feat: tidy topology layout, symbols for all device roles, drop draw.io
Topology: - Orthogonal routing: each parent drops to its own bus lane in the gap below it (interval coloring prevents overlaps), color-coded per parent; parallel links drawn thicker. Adjacent same-row links are straight, other same-row links use a lane above the row. - Port labels sit at the target device, stacked per uplink, instead of piling up at line midpoints. - Crossing reduction via repeated down/up barycenter sweeps; rows wrap at 12 devices. - Wide diagrams scale to page width in HTML/PDF instead of being cut off. Symbols: - New built-in symbols: modem/NTU (RAD), radio link, PoE injector, NAS, tape library, UPS/ATS and PBX. - Detection checks the device role first, then model/manufacturer, and covers the common typos "Acces Point", "Controler" and "Libary". Rooms and cable management are hidden; UPS devices are now shown. Removed the draw.io export format. Bump version to 0.5.0. Co-Authored-By: Claude Opus 5.5 <noreply@anthropic.com>
This commit is contained in:
@@ -19,7 +19,7 @@ Alle Abfragen laufen über die NetBox-Berechtigungen (`.restrict(user, "view")`)
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* Button **„Kundendoku“** auf Standort-, Lokations-, Mandanten- und Mandantengruppen-Seiten
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* oder Menü **Plugins → Kundendokumentation**
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Formate: **PDF**, **Word**, **HTML-Vorschau** (öffnet in neuem Tab) und **draw.io** (nur Topologie, editierbar).
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Formate: **PDF**, **Word** und **HTML-Vorschau** (öffnet in neuem Tab).
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## Installation
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@@ -216,18 +216,23 @@ Der Abschnitt **Netzwerk-Topologie** zeichnet je Standort ein Diagramm mit Symbo
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* Verbindungen stammen aus den **Kabelpfaden** in NetBox. Pfade über Patchpanels werden bis zum Endgerät verfolgt.
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* Die Anordnung von oben nach unten ergibt sich aus der Verkabelung: Provider → Firewall/Router → Core → Access → Endgeräte.
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Mehrfach-Uplinks werden als „2ד markiert.
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Die Reihenfolge innerhalb einer Ebene wird so optimiert, dass sich möglichst wenige Leitungen kreuzen.
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* Leitungen werden **rechtwinklig** über eigene Sammelschienen geführt, farbig je übergeordnetem Gerät. Portnamen stehen
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direkt am Zielgerät, Mehrfach-Uplinks werden dicker gezeichnet und als „2ד markiert.
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* Provider-Leitungen erscheinen als Wolke, Geräte anderer Standorte gestrichelt (abschaltbar).
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* Beschriftung wählbar: Management-IP, Modell, Ports an den Verbindungen.
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* Mit dem Format **draw.io** wird die Topologie als editierbare `.drawio`-Datei exportiert, eine Seite je Standort.
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**Symbole** (Menü **Plugins → Topologie-Symbole**, oder Button „Topologie-Symbol“ auf Gerätetyp- und Geräterollen-Seiten):
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1. Zuordnung je **Gerätetyp**: eingebautes Symbol wählen oder **eigenes Icon hochladen** (PNG/JPG, idealerweise transparent)
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2. Zuordnung je **Geräterolle**
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3. sonst **automatisch** anhand von Rolle, Modell und Hersteller (z.B. „Switch“, „Sophos“, „Access Point“, „Core“)
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3. sonst **automatisch**, zuerst anhand der Rolle, dann anhand von Modell und Hersteller
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Patchpanels, Steckdosenleisten, PDUs und USVs werden automatisch ausgeblendet. Über „In Topologie ausblenden“ lassen sich
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Eingebaute Symbole: Internet/Provider, Modem/NTU/RAD, Firewall, Router, Layer-3-Switch, Switch, Funkstrecke,
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WLAN-Controller, PoE-Injektor, Access Point, Server, Storage/SAN (MSA), NAS, Bandlaufwerk/Tape Library, USV/ATS,
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Telefonanlage, IP-Telefon, PC/Client, Drucker, Kamera und „Sonstiges“.
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Patchpanels, Steckdosen(leisten), PDUs, Kabelmanagement und Räume werden automatisch ausgeblendet. Über „In Topologie ausblenden“ lassen sich
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weitere Gerätetypen oder Rollen ausblenden. Eigene Icons liegen unter `MEDIA_ROOT/customer-export/symbols/`.
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Berechtigungen: Objekttyp *Customer Export | Topologie-Symbol*, analog zu den Branding-Profilen.
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@@ -5,7 +5,7 @@ class CustomerExportConfig(PluginConfig):
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name = "netbox_customer_export"
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verbose_name = "Kunden-Export"
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description = "Kundendokumentation als PDF oder Word exportieren"
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version = "0.4.0"
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version = "0.5.0"
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author = "Claude"
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base_url = "customer-export"
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min_version = "4.6.8"
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@@ -9,7 +9,7 @@ from .models import BrandingProfile, TopologySymbol
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from .sections import DEFAULT_DEVICE_COLUMNS, DEVICE_COLUMNS, SECTIONS
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from .symbols import KIND_CHOICES
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FORMAT_CHOICES = (("pdf", "PDF"), ("docx", "Word"), ("html", "HTML-Vorschau"), ("drawio", "draw.io"))
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FORMAT_CHOICES = (("pdf", "PDF"), ("docx", "Word"), ("html", "HTML-Vorschau"))
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class ScopeSelectForm(forms.Form):
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@@ -8,16 +8,23 @@ from io import BytesIO
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KINDS = OrderedDict(
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[
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("cloud", ("Internet / Provider", 0)),
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("modem", ("Modem / NTU / Medienkonverter", 1)),
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("firewall", ("Firewall", 1)),
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("router", ("Router", 1)),
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("l3switch", ("Layer-3-Switch / Core", 2)),
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("switch", ("Switch", 3)),
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("radio", ("Funkstrecke / Richtfunk", 3)),
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("wlc", ("WLAN-Controller", 3)),
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("poe", ("PoE-Injektor", 4)),
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("ap", ("Access Point", 4)),
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("server", ("Server", 4)),
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("storage", ("Storage / NAS", 4)),
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("pc", ("PC / Client", 4)),
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("storage", ("Storage / SAN (MSA)", 4)),
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("nas", ("NAS", 4)),
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("tape", ("Bandlaufwerk / Tape Library", 4)),
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("ups", ("USV / ATS", 4)),
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("pbx", ("Telefonanlage", 4)),
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("phone", ("IP-Telefon", 4)),
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("pc", ("PC / Client", 4)),
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("printer", ("Drucker", 4)),
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("camera", ("Kamera", 4)),
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("generic", ("Sonstiges Gerät", 4)),
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@@ -27,38 +34,50 @@ HIDDEN = "hidden"
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KIND_CHOICES = [(k, v[0]) for k, v in KINDS.items() if k != "cloud"] + [(HIDDEN, "In Topologie ausblenden")]
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# Reihenfolge wichtig: erster Treffer gewinnt. None = passiv, nicht zeichnen.
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# Tippvarianten („Acces Point“, „Controler“, „Libary“) sind absichtlich mit abgedeckt.
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_RULES = [
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(r"patch|panel|pdu|steckdose|power|strom|kabel|cable|blank|blind|shelf|fachboden|ups|usv|rangier", None),
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(r"patch|panel|\bpdu\b|steckdose|kabel|cable|blank|blind|shelf|fachboden|rangier|\braum\b|\broom\b|halterung|\bmount", None),
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(r"\busv\b|\bups\b|\bats\b|smart-?ups|eaton|\bapc\b|online usv", "ups"),
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(r"poe|injector|injektor", "poe"),
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(r"funk|richtfunk|\bbridge\b|airmax|nanobeam|litebeam|powerbeam|\bptp\b|\bptmp\b|airfiber|siklu", "radio"),
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(r"\brad\b|modem|\bntu\b|\bnt\b|\bont\b|media ?conver|medienkonverter|konverter|\betx-", "modem"),
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(r"firewall|\bfw\b|fw-|sophos|fortigate|fortinet|palo ?alto|\butm\b|\bxgs\b|\bxg\b|watchguard|checkpoint|opnsense|pfsense", "firewall"),
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(r"router|\brtr\b|gateway|\bgw\b|lancom|draytek|fritz|isr\d|asr\d|mikrotik", "router"),
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(r"controller|\bwlc\b|mobility", "wlc"),
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(r"access ?point|accesspoint|\bap\b|\bap-|-ap\b|\bwap\b|wlan|wifi|aironet|unifi ?ap|\biap\b|instant on ap", "ap"),
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(r"control+er|\bwlc\b|mobility", "wlc"),
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(r"acc?ess? ?point|\bap\b|\bap-|-ap\b|\bwap\b|wlan|wifi|aironet|unifi ?ap|\biap\b", "ap"),
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(r"\bcore\b|\bl3\b|layer ?3|distribution|\bdist\b|backbone", "l3switch"),
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(r"switch|\bsw\b|\bsw-|-sw\b|catalyst|aruba \d{4}|procurve|\bcbs\d|\bsg\d", "switch"),
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(r"storage|\bnas\b|\bsan\b|synology|qnap|netapp", "storage"),
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(r"server|\besx|hyper-?v|\bhost\b|proliant|poweredge|\bsrv\b|\bvm-?host", "server"),
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(r"telefon|phone|\bvoip\b|yealink|snom|gigaset", "phone"),
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(r"tape|band|\blto\b|libr?ary|storeever|\bmsl\d", "tape"),
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(r"\bnas\b|diskstation|synology|qnap|terastation|readynas|\btvs-|\bds\d{3,4}", "nas"),
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(r"storage|\bsan\b|\bmsa\b|netapp|powervault|eternus|\bme\d{4}", "storage"),
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(r"server|\besx|hyper-?v|\bhost\b|proliant|poweredge|primergy|\bsrv\b|\bvm-?host", "server"),
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(r"telefonanlage|\bpbx\b|\btk-?anlage|starface|3cx|innovaphone|agfeo|auerswald|unify|openscape", "pbx"),
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(r"telefon|phone|\bvoip\b|yealink|snom|gigaset|grandstream", "phone"),
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(r"drucker|printer|\bmfp\b|kyocera|brother|ricoh", "printer"),
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(r"kamera|camera|\bcam\b|axis|hikvision|dahua", "camera"),
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(r"\bpc\b|client|workstation|laptop|notebook|thin ?client|desktop", "pc"),
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(r"sonstig|other|misc", "generic"),
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]
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def guess_kind(device):
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"""Symbol aus Rolle, Gerätetyp und Hersteller raten. None = passives Gerät (nicht zeichnen)."""
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dt = device.device_type
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role = device.role
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text = " ".join(
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str(x or "")
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for x in (
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getattr(role, "slug", ""), getattr(role, "name", ""),
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dt.model, dt.slug, getattr(dt.manufacturer, "name", ""),
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)
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).lower()
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def _match(text):
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"""(True, kind) beim ersten Treffer, sonst (False, None)."""
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text = text.lower()
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for pattern, kind in _RULES:
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if re.search(pattern, text):
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return kind
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return "generic"
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return True, kind
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return False, None
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def guess_kind(device):
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"""Symbol raten: zuerst anhand der Rolle, dann Modell/Hersteller. None = passives Gerät (nicht zeichnen)."""
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role = device.role
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found, kind = _match(f"{getattr(role, 'name', '')} {getattr(role, 'slug', '')}")
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if found:
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return kind
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dt = device.device_type
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found, kind = _match(f"{dt.model} {dt.slug} {getattr(dt.manufacturer, 'name', '')}")
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return kind if found else "generic"
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# --- Zeichnen -----------------------------------------------------------------
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@@ -210,6 +229,74 @@ def _draw_generic(d):
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d.rectangle([26 + i * 18, 76, 38 + i * 18, 86], fill=(200, 208, 216))
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def _draw_modem(d):
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# flache Box mit LED-Reihe und Glasfaser-/Leitungsanschluss (Modem, NTU, RAD, Medienkonverter)
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_iso_box(d, 12, 58, 100, 88, 12, (70, 84, 100), (130, 146, 162), (52, 64, 78))
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for i, c in enumerate(((60, 200, 90), (60, 200, 90), (250, 190, 40), (60, 200, 90))):
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d.ellipse([22 + i * 12, 68, 28 + i * 12, 74], fill=c)
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d.rectangle([76, 66, 92, 80], fill=(30, 36, 44))
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d.line([(84, 58), (84, 34), (112, 34)], fill=(250, 170, 30), width=4)
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def _draw_radio(d):
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# Richtfunk-Antenne auf Mast mit Funkwellen
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d.rectangle([58, 64, 66, 116], fill=(120, 128, 138), outline=OUTLINE)
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d.rectangle([40, 112, 84, 118], fill=(120, 128, 138), outline=OUTLINE)
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d.ellipse([22, 26, 70, 90], fill=(236, 240, 244), outline=OUTLINE, width=3)
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d.ellipse([36, 44, 56, 72], fill=(200, 208, 216), outline=OUTLINE, width=2)
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for r in (14, 24, 34):
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d.arc([74 - r, 58 - r, 74 + r, 58 + r], start=-50, end=50, fill=BLUE, width=5)
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def _draw_poe(d):
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# kleine Box mit Blitz
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_iso_box(d, 24, 50, 96, 98, 12, (58, 70, 84), (120, 134, 150), (42, 52, 64))
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d.polygon([(66, 56), (48, 78), (60, 78), (54, 94), (76, 70), (63, 70), (70, 56)], fill=(250, 200, 40), outline=(160, 110, 0))
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d.rectangle([30, 86, 40, 92], fill=(180, 190, 200))
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d.rectangle([80, 86, 90, 92], fill=(180, 190, 200))
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def _draw_nas(d):
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# kompakte Box mit vier senkrechten Laufwerksschächten
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_iso_box(d, 22, 30, 98, 108, 12, (54, 60, 70), (110, 118, 130), (38, 44, 52))
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for i in range(4):
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x = 30 + i * 17
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d.rounded_rectangle([x, 40, x + 12, 96], radius=2, fill=(150, 158, 168))
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d.ellipse([x + 4, 88, x + 8, 92], fill=(60, 200, 90))
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def _draw_tape(d):
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# Laufwerk mit Kassettenschacht, davor eine LTO-Kassette
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_iso_box(d, 10, 44, 102, 82, 12, (84, 98, 112), (150, 162, 176), (60, 72, 84))
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d.rectangle([22, 56, 72, 64], fill=(24, 28, 34))
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d.ellipse([84, 56, 92, 64], fill=(60, 200, 90))
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d.rounded_rectangle([36, 84, 92, 118], radius=4, fill=(40, 44, 50), outline=OUTLINE, width=2)
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d.rectangle([44, 90, 84, 100], fill=(250, 190, 40))
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d.ellipse([52, 104, 62, 114], fill=(150, 158, 168))
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d.ellipse([68, 104, 78, 114], fill=(150, 158, 168))
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def _draw_ups(d):
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# Tower mit Batterie-Symbol
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_iso_box(d, 32, 22, 88, 112, 12, (52, 58, 66), (110, 118, 128), (36, 42, 50))
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d.rounded_rectangle([42, 36, 78, 60], radius=3, fill=(30, 36, 44))
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d.rectangle([46, 42, 70, 54], outline=(60, 200, 90), width=2)
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d.rectangle([70, 45, 74, 51], fill=(60, 200, 90))
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d.rectangle([48, 44, 62, 52], fill=(60, 200, 90))
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d.polygon([(62, 70), (50, 88), (58, 88), (54, 102), (70, 82), (62, 82), (68, 70)], fill=(250, 200, 40))
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def _draw_pbx(d):
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# Anlage (Box) mit Hörer-Symbol
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_iso_box(d, 12, 50, 104, 104, 12, (62, 70, 80), (126, 136, 148), (44, 52, 60))
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d.rounded_rectangle([34, 62, 82, 92], radius=12, fill=(236, 240, 244))
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d.rounded_rectangle([40, 70, 50, 86], radius=4, fill=(40, 44, 50))
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d.rounded_rectangle([66, 70, 76, 86], radius=4, fill=(40, 44, 50))
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d.rectangle([46, 70, 70, 76], fill=(40, 44, 50))
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for i in range(3):
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d.ellipse([88, 60 + i * 12, 96, 68 + i * 12], fill=(60, 200, 90))
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_DRAWERS = {
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"router": _draw_router,
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"switch": _draw_switch,
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@@ -225,6 +312,13 @@ _DRAWERS = {
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"camera": _draw_camera,
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"cloud": _draw_cloud,
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"generic": _draw_generic,
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"modem": _draw_modem,
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"radio": _draw_radio,
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"poe": _draw_poe,
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"nas": _draw_nas,
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"tape": _draw_tape,
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"ups": _draw_ups,
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"pbx": _draw_pbx,
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}
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@@ -35,7 +35,8 @@
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.images { display: flex; gap: 12mm; justify-content: center; page-break-inside: avoid; }
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.images figure { margin: 0; text-align: center; }
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.images img { max-height: 190mm; max-width: 80mm; }
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.images.wide img { max-width: 100%; max-height: 240mm; }
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.images.wide figure { width: 100%; min-width: 0; }
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.images.wide img { width: 100%; height: auto; max-height: 240mm; object-fit: contain; }
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figcaption { font-style: italic; color: #555; }
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.footer { position: running(footer); font-size: 7pt; color: #777; }
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@media screen { .footer { display: none; } }
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@@ -42,12 +42,11 @@
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{% for value, label in form.format.field.choices %}
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<input type="radio" class="btn-check" name="format" id="fmt-{{ value }}" value="{{ value }}" autocomplete="off"{% if form.format.value == value %} checked{% endif %}>
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<label class="btn btn-outline-primary" for="fmt-{{ value }}">
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{% if value == 'pdf' %}<i class="mdi mdi-file-pdf-box"></i>{% elif value == 'docx' %}<i class="mdi mdi-file-word-box"></i>{% elif value == 'drawio' %}<i class="mdi mdi-sitemap"></i>{% else %}<i class="mdi mdi-web"></i>{% endif %}
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{% if value == 'pdf' %}<i class="mdi mdi-file-pdf-box"></i>{% elif value == 'docx' %}<i class="mdi mdi-file-word-box"></i>{% else %}<i class="mdi mdi-web"></i>{% endif %}
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{{ label }}
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</label>
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{% endfor %}
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</div>
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<div class="form-text mt-n2 mb-3" id="ce-drawio-hint" hidden>draw.io exportiert nur die Topologie als bearbeitbares Diagramm (Optionen unten bei „Topologie“).</div>
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<div class="mb-3"><label class="form-label" for="{{ form.title.id_for_label }}">Titel</label>{{ form.title }}</div>
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<div class="mb-3"><label class="form-label" for="{{ form.subtitle.id_for_label }}">Untertitel</label>{{ form.subtitle }}</div>
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<div class="mb-3"><label class="form-label" for="{{ form.author.id_for_label }}">Erstellt von</label>{{ form.author }}<div class="form-text">Leer = dein Benutzername</div></div>
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@@ -156,15 +155,10 @@
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});
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// Detailkarten ausgrauen, wenn der zugehörige Abschnitt abgewählt ist
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function sync() {
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var fmt = document.querySelector('input[name=format]:checked');
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var drawio = fmt && fmt.value === 'drawio';
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document.querySelectorAll('[data-ce-depends]').forEach(function (card) {
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var cb = document.querySelector('input[name=sections][value="' + card.dataset.ceDepends + '"]');
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// draw.io nutzt nur die Topologie-Optionen
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var active = drawio ? card.dataset.ceDepends === 'topology' : (!cb || cb.checked);
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card.classList.toggle('ce-dim', !active);
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card.classList.toggle('ce-dim', !!cb && !cb.checked);
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});
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document.getElementById('ce-drawio-hint').hidden = !drawio;
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}
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document.addEventListener('change', sync);
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sync();
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+230
-134
@@ -1,13 +1,11 @@
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"""Netzwerk-Topologie: Graph aus den Kabelverbindungen, Ebenen-Layout, PNG- und draw.io-Ausgabe."""
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import base64
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"""Netzwerk-Topologie: Graph aus den Kabelverbindungen, Ebenen-Layout mit rechtwinkligen Leitungen, PNG-Ausgabe."""
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from collections import OrderedDict, defaultdict, deque
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from dataclasses import dataclass, field
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from io import BytesIO
|
||||
from xml.sax.saxutils import escape, quoteattr
|
||||
|
||||
from .symbols import KINDS, SIZE, SymbolResolver, builtin_icon
|
||||
from .symbols import KINDS, SymbolResolver, builtin_icon
|
||||
|
||||
MAX_PER_ROW = 8
|
||||
MAX_PER_ROW = 12 # breitere Zeilen werden umgebrochen
|
||||
|
||||
|
||||
@dataclass
|
||||
@@ -18,9 +16,9 @@ class Node:
|
||||
icon: bytes
|
||||
sub: list = field(default_factory=list)
|
||||
external: bool = False # Gerät eines anderen Standorts / Provider
|
||||
layer: int = 0
|
||||
x: float = 0
|
||||
y: float = 0
|
||||
row: int = 0 # Zeile im Diagramm (nach Umbruch)
|
||||
x: float = 0 # Mitte, in Layout-Pixeln
|
||||
y: float = 0 # Oberkante des Symbols, wird beim Zeichnen gesetzt
|
||||
|
||||
|
||||
@dataclass
|
||||
@@ -148,8 +146,23 @@ def build_graphs(scope, opts):
|
||||
|
||||
# --- Layout -------------------------------------------------------------------
|
||||
|
||||
CELL_W = 190 # Spaltenbreite
|
||||
ICON = 64 # Symbolgröße
|
||||
LANE = 11 # Abstand der Sammelschienen im Zwischenraum
|
||||
PORT_H = 13 # Zeilenhöhe der Port-Beschriftungen
|
||||
|
||||
|
||||
def _label_h(n):
|
||||
return 20 + 13 * len(n.sub)
|
||||
|
||||
|
||||
def _layout(nodes, edges):
|
||||
"""Ebenen per Breitensuche ab den „höchsten“ Geräten (Provider, Firewall, Router …), dann Reihenfolge nach Nachbarn."""
|
||||
"""Ebenen per Breitensuche ab den „höchsten“ Geräten (Provider, Firewall, Router …).
|
||||
|
||||
Die Breitensuche garantiert, dass verbundene Geräte höchstens eine Ebene auseinanderliegen – so bleiben
|
||||
alle Leitungen kurz. Danach wird die Reihenfolge in mehreren Durchläufen (abwärts/aufwärts) nach dem
|
||||
Schwerpunkt der Nachbarn sortiert, um Kreuzungen zu minimieren.
|
||||
"""
|
||||
adj = defaultdict(set)
|
||||
for e in edges:
|
||||
adj[e.a].add(e.b)
|
||||
@@ -159,65 +172,85 @@ def _layout(nodes, edges):
|
||||
layer = {n: None for n in nodes if not adj[n]} # isolierte Knoten: unterste Zeile
|
||||
remaining = set(nodes) - set(layer)
|
||||
while remaining:
|
||||
# jede Zusammenhangskomponente ab ihren am höchsten eingestuften Knoten
|
||||
top = min(tier[n] for n in remaining)
|
||||
roots = [n for n in nodes if n in remaining and tier[n] == top]
|
||||
queue = deque()
|
||||
for r in roots:
|
||||
layer[r] = tier[r] if tier[r] <= 1 else 0
|
||||
for r in [n for n in nodes if n in remaining and tier[n] == top]:
|
||||
layer[r] = 0
|
||||
queue.append(r)
|
||||
while queue:
|
||||
cur = queue.popleft()
|
||||
remaining.discard(cur)
|
||||
for nb in adj[cur]:
|
||||
if nb not in layer:
|
||||
layer[nb] = layer[cur] + 1 # Ebene folgt der Verkabelung
|
||||
layer[nb] = layer[cur] + 1
|
||||
queue.append(nb)
|
||||
|
||||
used = sorted({v for v in layer.values() if v is not None})
|
||||
rank = {v: i for i, v in enumerate(used)}
|
||||
bottom = len(used)
|
||||
rows = defaultdict(list)
|
||||
order = defaultdict(list)
|
||||
for nid in nodes:
|
||||
rows[rank[layer[nid]] if layer[nid] is not None else bottom].append(nid)
|
||||
order[rank[layer[nid]] if layer[nid] is not None else len(used)].append(nid)
|
||||
rows = sorted(order)
|
||||
|
||||
# Reihenfolge: Schwerpunkt der Nachbarn in der Zeile darüber (reduziert Kreuzungen)
|
||||
pos = {}
|
||||
for r in sorted(rows):
|
||||
row = rows[r]
|
||||
if r > 0:
|
||||
def bary(n):
|
||||
ps = [pos[p] for p in adj[n] if p in pos]
|
||||
return sum(ps) / len(ps) if ps else 1e9
|
||||
row.sort(key=bary)
|
||||
for i, n in enumerate(row):
|
||||
pos[n] = i
|
||||
def centered(r):
|
||||
row = order[r]
|
||||
return {n: i - (len(row) - 1) / 2 for i, n in enumerate(row)}
|
||||
|
||||
# Zeilen mit zu vielen Knoten umbrechen, dann Koordinaten
|
||||
CELL_W, CELL_H = 200, 190
|
||||
def sweep(r, ref):
|
||||
if ref not in order:
|
||||
return
|
||||
pos, cur = centered(ref), centered(r)
|
||||
|
||||
def key(n):
|
||||
ps = [pos[p] for p in adj[n] if p in pos]
|
||||
return sum(ps) / len(ps) if ps else cur[n]
|
||||
|
||||
order[r].sort(key=key)
|
||||
|
||||
for _ in range(4):
|
||||
for r in rows[1:]:
|
||||
sweep(r, r - 1)
|
||||
for r in reversed(rows[:-1]):
|
||||
sweep(r, r + 1)
|
||||
|
||||
# Zeilen umbrechen und Spalten vergeben
|
||||
lines = []
|
||||
for r in sorted(rows):
|
||||
row = rows[r]
|
||||
for r in rows:
|
||||
row = order[r]
|
||||
for i in range(0, len(row), MAX_PER_ROW):
|
||||
lines.append(row[i : i + MAX_PER_ROW])
|
||||
width = max(len(line) for line in lines) * CELL_W
|
||||
for li, line in enumerate(lines):
|
||||
offset = (width - len(line) * CELL_W) / 2
|
||||
for i, nid in enumerate(line):
|
||||
nodes[nid].row = li
|
||||
nodes[nid].x = offset + i * CELL_W + CELL_W / 2
|
||||
nodes[nid].y = li * CELL_H + 70
|
||||
|
||||
|
||||
def _oriented(graph, e):
|
||||
"""Port-Beschriftungen aus Sicht des oberen Knotens („Uplink-Port – Downlink-Port“)."""
|
||||
"""Port-Beschriftungen aus Sicht des oberen (bzw. linken) Knotens: „Uplink-Port – Downlink-Port“."""
|
||||
a, b = graph.nodes[e.a], graph.nodes[e.b]
|
||||
if a.y <= b.y:
|
||||
if (a.row, a.x) <= (b.row, b.x):
|
||||
return e.labels
|
||||
return [" – ".join(reversed(x.split(" – "))) for x in e.labels]
|
||||
|
||||
|
||||
def _edge_text(graph, e, show_ports):
|
||||
if show_ports:
|
||||
labels = _oriented(graph, e)
|
||||
return labels[0] + (f" (+{len(labels) - 1})" if len(labels) > 1 else "")
|
||||
return f"{len(e.labels)}×" if len(e.labels) > 1 else None
|
||||
|
||||
|
||||
# --- PNG ----------------------------------------------------------------------
|
||||
|
||||
PALETTE = [
|
||||
(31, 119, 180), (214, 39, 40), (44, 160, 44), (148, 103, 189), (255, 127, 14),
|
||||
(23, 150, 170), (140, 86, 75), (188, 150, 20), (200, 80, 160), (90, 90, 90),
|
||||
]
|
||||
EXTERNAL = (160, 160, 160)
|
||||
|
||||
|
||||
def _font(size, bold=False):
|
||||
from PIL import ImageFont
|
||||
|
||||
@@ -233,64 +266,177 @@ def _font(size, bold=False):
|
||||
return ImageFont.load_default()
|
||||
|
||||
|
||||
def _plan(graph, show_ports):
|
||||
"""Ordnet jede Verbindung einem Zwischenraum und einer Sammelschiene zu und berechnet die Zeilenhöhen."""
|
||||
nodes = graph.nodes
|
||||
rows = defaultdict(list)
|
||||
for n in nodes.values():
|
||||
rows[n.row].append(n)
|
||||
n_rows = max(rows) + 1
|
||||
|
||||
down = defaultdict(lambda: defaultdict(list)) # Zwischenraum über Zeile r -> oberer Knoten -> [(Kind, Kante)]
|
||||
same = defaultdict(list) # Zeile -> Kanten innerhalb der Zeile, nicht benachbart
|
||||
direct = [] # benachbarte Knoten derselben Zeile: gerade Linie
|
||||
for e in graph.edges:
|
||||
a, b = nodes[e.a], nodes[e.b]
|
||||
if a.row == b.row:
|
||||
(direct if abs(a.x - b.x) <= CELL_W + 1 else same[a.row]).append(e)
|
||||
else:
|
||||
up, lo = (a, b) if a.row < b.row else (b, a)
|
||||
down[lo.row][up.id].append((lo, e))
|
||||
|
||||
gaps = {}
|
||||
for r in range(n_rows):
|
||||
items = []
|
||||
for uid, lst in down[r].items():
|
||||
xs = [nodes[uid].x] + [c.x for c, _ in lst]
|
||||
items.append((min(xs), max(xs), ("d", uid)))
|
||||
for i, e in enumerate(same[r]):
|
||||
xs = [nodes[e.a].x, nodes[e.b].x]
|
||||
items.append((min(xs), max(xs), ("s", i)))
|
||||
# Intervall-Färbung: überlappende Schienen bekommen verschiedene Höhen
|
||||
lane_end, lane_of = [], {}
|
||||
for xmin, xmax, key in sorted(items):
|
||||
for li, end in enumerate(lane_end):
|
||||
if end < xmin - 14:
|
||||
lane_end[li], lane_of[key] = xmax, li
|
||||
break
|
||||
else:
|
||||
lane_of[key] = len(lane_end)
|
||||
lane_end.append(xmax)
|
||||
parents = defaultdict(list)
|
||||
for uid, lst in down[r].items():
|
||||
for c, e in lst:
|
||||
parents[c.id].append(uid)
|
||||
for c in parents:
|
||||
parents[c].sort(key=lambda uid: nodes[uid].x)
|
||||
labelled = [e for lst in down[r].values() for _, e in lst if _edge_text(graph, e, show_ports)]
|
||||
stack = max((len(v) for v in parents.values()), default=0) if labelled else 0
|
||||
label_room = stack * PORT_H + 4
|
||||
height = 16 + len(lane_end) * LANE + label_room if lane_end else (26 if r else 12)
|
||||
gaps[r] = {"lane_of": lane_of, "parents": parents, "height": height}
|
||||
|
||||
y = 16
|
||||
for r in range(n_rows):
|
||||
gaps[r]["top"] = y + 8
|
||||
y += gaps[r]["height"]
|
||||
for n in rows[r]:
|
||||
n.y = y
|
||||
y += ICON + max(_label_h(n) for n in rows[r])
|
||||
width = max(n.x for n in nodes.values()) + CELL_W / 2
|
||||
return down, same, direct, gaps, width, y + 16
|
||||
|
||||
|
||||
def render_png(graph, show_ports=False, scale=2):
|
||||
from PIL import Image, ImageDraw
|
||||
|
||||
icon = 64
|
||||
nodes = graph.nodes.values()
|
||||
w = int((max(n.x for n in nodes) + 100) * scale)
|
||||
h = int((max(n.y for n in nodes) + 110) * scale)
|
||||
img = Image.new("RGB", (w, h), (255, 255, 255))
|
||||
nodes = graph.nodes
|
||||
down, same, direct, gaps, width, height = _plan(graph, show_ports)
|
||||
S = scale
|
||||
img = Image.new("RGB", (int(width * S), int(height * S)), (255, 255, 255))
|
||||
d = ImageDraw.Draw(img)
|
||||
f_name, f_sub, f_port = _font(12 * scale, bold=True), _font(10 * scale), _font(8 * scale)
|
||||
f_name, f_sub, f_port = _font(12 * S, bold=True), _font(10 * S), _font(8 * S)
|
||||
|
||||
def c(n):
|
||||
return n.x * scale, n.y * scale
|
||||
|
||||
def anchors(a, b):
|
||||
"""Linie unterhalb der Beschriftung des oberen Knotens beginnen, oben am unteren Symbol enden."""
|
||||
if a.y > b.y:
|
||||
a, b = b, a
|
||||
if a.y == b.y:
|
||||
return c(a), c(b)
|
||||
label_h = 22 + 13 * len(a.sub)
|
||||
return (a.x * scale, (a.y + icon / 2 + label_h) * scale), (b.x * scale, (b.y - icon / 2 - 2) * scale)
|
||||
|
||||
for e in graph.edges:
|
||||
a, b = graph.nodes[e.a], graph.nodes[e.b]
|
||||
dashed = a.external or b.external
|
||||
color = (150, 150, 150) if dashed else (60, 60, 60)
|
||||
(x1, y1), (x2, y2) = anchors(a, b)
|
||||
if dashed:
|
||||
steps = int(max(abs(x2 - x1), abs(y2 - y1)) / (8 * scale)) or 1
|
||||
def line(points, color, w=2, dashed=False):
|
||||
pts = [(x * S, y * S) for x, y in points]
|
||||
if not dashed:
|
||||
d.line(pts, fill=color, width=w * S, joint="curve")
|
||||
return
|
||||
for (x1, y1), (x2, y2) in zip(pts, pts[1:]):
|
||||
length = max(abs(x2 - x1), abs(y2 - y1))
|
||||
steps = max(int(length / (6 * S)), 1)
|
||||
for i in range(0, steps, 2):
|
||||
t1, t2 = i / steps, min((i + 1) / steps, 1)
|
||||
d.line([(x1 + (x2 - x1) * t1, y1 + (y2 - y1) * t1), (x1 + (x2 - x1) * t2, y1 + (y2 - y1) * t2)], fill=color, width=2 * scale)
|
||||
else:
|
||||
d.line([(x1, y1), (x2, y2)], fill=color, width=2 * scale)
|
||||
mx, my = (x1 + x2) / 2, (y1 + y2) / 2
|
||||
text = None
|
||||
if show_ports:
|
||||
labels = _oriented(graph, e)
|
||||
text = labels[0] + (f" (+{len(labels) - 1})" if len(labels) > 1 else "")
|
||||
elif len(e.labels) > 1:
|
||||
text = f"{len(e.labels)}×"
|
||||
if text:
|
||||
tw = d.textlength(text, font=f_port)
|
||||
d.rounded_rectangle([mx - tw / 2 - 4 * scale, my - 7 * scale, mx + tw / 2 + 4 * scale, my + 7 * scale], radius=3 * scale, fill=(255, 255, 255), outline=(200, 200, 200))
|
||||
d.text((mx, my), text, fill=(40, 40, 40), font=f_port, anchor="mm")
|
||||
d.line(
|
||||
[(x1 + (x2 - x1) * t1, y1 + (y2 - y1) * t1), (x1 + (x2 - x1) * t2, y1 + (y2 - y1) * t2)],
|
||||
fill=color, width=w * S,
|
||||
)
|
||||
|
||||
for n in nodes:
|
||||
x, y = c(n)
|
||||
pic = Image.open(BytesIO(n.icon)).convert("RGBA").resize((icon * scale, icon * scale), Image.LANCZOS)
|
||||
def tag(text, x, y, anchor):
|
||||
text = _clip(d, text, f_port, (CELL_W - 12) * S)
|
||||
tw = d.textlength(text, font=f_port)
|
||||
cx = x * S
|
||||
cy = y * S - (6 * S if anchor == "mb" else 0)
|
||||
d.rounded_rectangle(
|
||||
[cx - tw / 2 - 3 * S, cy - 6 * S, cx + tw / 2 + 3 * S, cy + 6 * S],
|
||||
radius=2 * S, fill=(255, 255, 255), outline=(215, 215, 215),
|
||||
)
|
||||
d.text((cx, cy), text, fill=(40, 40, 40), font=f_port, anchor="mm")
|
||||
|
||||
colors = {}
|
||||
|
||||
def color_for(uid):
|
||||
if uid not in colors:
|
||||
colors[uid] = PALETTE[len(colors) % len(PALETTE)]
|
||||
return colors[uid]
|
||||
|
||||
labels = [] # erst nach allen Linien zeichnen, damit sie oben liegen
|
||||
|
||||
for r, groups in sorted(down.items()):
|
||||
gap = gaps[r]
|
||||
for uid, lst in groups.items():
|
||||
u = nodes[uid]
|
||||
ly = gap["top"] + gap["lane_of"][("d", uid)] * LANE
|
||||
col = EXTERNAL if u.external else color_for(uid)
|
||||
entries = []
|
||||
for c, e in lst:
|
||||
plist = gap["parents"][c.id]
|
||||
k = plist.index(uid)
|
||||
# mehrere Uplinks in dasselbe Gerät: leicht versetzt einführen
|
||||
entries.append((c, e, c.x + (k - (len(plist) - 1) / 2) * 9, len(plist) - 1 - k))
|
||||
xs = [u.x] + [ex for _, _, ex, _ in entries]
|
||||
u_bottom = u.y + ICON + _label_h(u) - 2
|
||||
line([(u.x, u_bottom), (u.x, ly)], col, dashed=u.external)
|
||||
if max(xs) > min(xs):
|
||||
line([(min(xs), ly), (max(xs), ly)], col, dashed=u.external)
|
||||
for c, e, ex, stack_pos in entries:
|
||||
dashed = u.external or c.external
|
||||
line([(ex, ly), (ex, c.y - 2)], EXTERNAL if dashed else col, w=3 if len(e.labels) > 1 else 2, dashed=dashed)
|
||||
if min(xs) < ex < max(xs): # Abzweig auf der Schiene markieren
|
||||
d.ellipse([(ex - 2.5) * S, (ly - 2.5) * S, (ex + 2.5) * S, (ly + 2.5) * S], fill=col)
|
||||
text = _edge_text(graph, e, show_ports)
|
||||
if text:
|
||||
labels.append((text, ex, c.y - 3 - stack_pos * PORT_H, "mb"))
|
||||
|
||||
for r, lst in same.items():
|
||||
gap = gaps[r]
|
||||
for i, e in enumerate(lst):
|
||||
a, b = nodes[e.a], nodes[e.b]
|
||||
ly = gap["top"] + gap["lane_of"][("s", i)] * LANE
|
||||
dashed = a.external or b.external
|
||||
line([(a.x, a.y - 2), (a.x, ly), (b.x, ly), (b.x, b.y - 2)], EXTERNAL if dashed else (70, 70, 70), dashed=dashed)
|
||||
text = _edge_text(graph, e, show_ports)
|
||||
if text:
|
||||
labels.append((text, (a.x + b.x) / 2, ly, "mm"))
|
||||
|
||||
for e in direct:
|
||||
a, b = nodes[e.a], nodes[e.b]
|
||||
dashed = a.external or b.external
|
||||
cy = a.y + ICON / 2
|
||||
left, right = (a, b) if a.x < b.x else (b, a)
|
||||
line(
|
||||
[(left.x + ICON / 2 + 4, cy), (right.x - ICON / 2 - 4, cy)],
|
||||
EXTERNAL if dashed else (70, 70, 70), w=3 if len(e.labels) > 1 else 2, dashed=dashed,
|
||||
)
|
||||
text = _edge_text(graph, e, show_ports)
|
||||
if text:
|
||||
labels.append((text, (a.x + b.x) / 2, cy - 4, "mb"))
|
||||
|
||||
for n in nodes.values():
|
||||
pic = Image.open(BytesIO(n.icon)).convert("RGBA").resize((ICON * S, ICON * S), Image.LANCZOS)
|
||||
if n.external:
|
||||
alpha = pic.getchannel("A").point(lambda v: int(v * 0.55))
|
||||
pic.putalpha(alpha)
|
||||
img.paste(pic, (int(x - icon * scale / 2), int(y - icon * scale / 2)), pic)
|
||||
ty = y + icon * scale / 2 + 4 * scale
|
||||
d.text((x, ty), _clip(d, n.label, f_name, 190 * scale), fill=(110, 110, 110) if n.external else (20, 20, 20), font=f_name, anchor="ma")
|
||||
for i, line in enumerate(n.sub):
|
||||
d.text((x, ty + (16 + i * 13) * scale), _clip(d, line, f_sub, 190 * scale), fill=(100, 100, 100), font=f_sub, anchor="ma")
|
||||
pic.putalpha(pic.getchannel("A").point(lambda v: int(v * 0.5)))
|
||||
img.paste(pic, (int((n.x - ICON / 2) * S), int(n.y * S)), pic)
|
||||
ty = (n.y + ICON + 3) * S
|
||||
d.text(
|
||||
(n.x * S, ty), _clip(d, n.label, f_name, (CELL_W - 8) * S),
|
||||
fill=(120, 120, 120) if n.external else (20, 20, 20), font=f_name, anchor="ma",
|
||||
)
|
||||
for i, sub in enumerate(n.sub):
|
||||
d.text((n.x * S, ty + (16 + i * 13) * S), _clip(d, sub, f_sub, (CELL_W - 8) * S), fill=(100, 100, 100), font=f_sub, anchor="ma")
|
||||
|
||||
for text, x, y, anchor in labels:
|
||||
tag(text, x, y, anchor)
|
||||
|
||||
out = BytesIO()
|
||||
img.save(out, "PNG", optimize=True)
|
||||
@@ -303,53 +449,3 @@ def _clip(d, text, font, width):
|
||||
while text and d.textlength(text + "…", font=font) > width:
|
||||
text = text[:-1]
|
||||
return text + "…"
|
||||
|
||||
|
||||
# --- draw.io ------------------------------------------------------------------
|
||||
|
||||
def _small_icon(png, px=64):
|
||||
from PIL import Image
|
||||
|
||||
img = Image.open(BytesIO(png)).convert("RGBA").resize((px, px), Image.LANCZOS)
|
||||
out = BytesIO()
|
||||
img.save(out, "PNG", optimize=True)
|
||||
return base64.b64encode(out.getvalue()).decode("ascii")
|
||||
|
||||
|
||||
def render_drawio(graphs, show_ports=False):
|
||||
"""draw.io-Datei (mxfile) mit einer Seite je Standort. Symbole als eingebettete Bilder."""
|
||||
icon_cache = {}
|
||||
pages = []
|
||||
for gi, g in enumerate(graphs):
|
||||
cells = ['<mxCell id="0"/>', '<mxCell id="1" parent="0"/>']
|
||||
for n in g.nodes.values():
|
||||
key = id(n.icon)
|
||||
if key not in icon_cache:
|
||||
icon_cache[key] = _small_icon(n.icon)
|
||||
label = escape(n.label) + "".join(f"<br><font style=\"font-size:10px\" color=\"#666666\">{escape(s)}</font>" for s in n.sub)
|
||||
style = (
|
||||
"shape=image;html=1;verticalLabelPosition=bottom;verticalAlign=top;labelBackgroundColor=none;"
|
||||
f"imageAspect=0;aspect=fixed;fontStyle=1;{'opacity=55;' if n.external else ''}"
|
||||
f"image=data:image/png,{icon_cache[key]};"
|
||||
)
|
||||
cells.append(
|
||||
f'<mxCell id="{n.id}" value={quoteattr(label)} style={quoteattr(style)} vertex="1" parent="1">'
|
||||
f'<mxGeometry x="{n.x - 32:.0f}" y="{n.y - 32:.0f}" width="64" height="64" as="geometry"/></mxCell>'
|
||||
)
|
||||
for i, e in enumerate(g.edges):
|
||||
dashed = g.nodes[e.a].external or g.nodes[e.b].external
|
||||
label = "<br>".join(escape(x) for x in _oriented(g, e)) if show_ports else (f"{len(e.labels)}×" if len(e.labels) > 1 else "")
|
||||
style = f"endArrow=none;html=1;strokeWidth=2;strokeColor={'#999999' if dashed else '#333333'};{'dashed=1;' if dashed else ''}fontSize=9;labelBackgroundColor=#ffffff;"
|
||||
cells.append(
|
||||
f'<mxCell id="e{i}" value={quoteattr(label)} style={quoteattr(style)} edge="1" parent="1" source="{e.a}" target="{e.b}">'
|
||||
'<mxGeometry relative="1" as="geometry"/></mxCell>'
|
||||
)
|
||||
pages.append(
|
||||
f'<diagram id="page{gi}" name={quoteattr(g.title)}><mxGraphModel dx="1200" dy="800" grid="1" gridSize="10" '
|
||||
f'guides="1" tooltips="1" connect="1" arrows="1" fold="1" page="0" pageScale="1" math="0" shadow="0">'
|
||||
f'<root>{"".join(cells)}</root></mxGraphModel></diagram>'
|
||||
)
|
||||
return f'<mxfile host="netbox-customer-export">{"".join(pages)}</mxfile>'.encode("utf-8")
|
||||
|
||||
|
||||
__all__ = ["build_graphs", "render_png", "render_drawio", "SIZE"]
|
||||
|
||||
@@ -28,20 +28,6 @@ class ScopeSelectView(LoginRequiredMixin, View):
|
||||
|
||||
|
||||
class ExportView(LoginRequiredMixin, View):
|
||||
def _drawio(self, request, scope, form, opts):
|
||||
"""Nur die Topologie – als editierbare draw.io-Datei (eine Seite je Standort)."""
|
||||
from .topology import build_graphs, render_drawio
|
||||
|
||||
graphs = build_graphs(scope, opts)
|
||||
if not graphs:
|
||||
messages.warning(request, "Keine verkabelten Geräte gefunden – es gibt keine Topologie zu exportieren.")
|
||||
return self._render_form(request, scope, form)
|
||||
content = render_drawio(graphs, show_ports="ports" in (opts.get("topo_details") or []))
|
||||
response = HttpResponse(content, content_type="application/xml")
|
||||
filename = f"topologie_{slugify(str(scope.obj)) or 'export'}_{timezone.localdate():%Y%m%d}.drawio"
|
||||
response["Content-Disposition"] = f'attachment; filename="{filename}"'
|
||||
return response
|
||||
|
||||
template_name = "netbox_customer_export/export.html"
|
||||
|
||||
def _scope(self, request, kind, pk):
|
||||
@@ -68,8 +54,6 @@ class ExportView(LoginRequiredMixin, View):
|
||||
return self._render_form(request, scope, form)
|
||||
|
||||
opts = form.cleaned_data
|
||||
if opts["format"] == "drawio":
|
||||
return self._drawio(request, scope, form, opts)
|
||||
blocks = []
|
||||
for key in opts["sections"]:
|
||||
blocks += SECTIONS[key].func(scope, opts)
|
||||
|
||||
+1
-1
@@ -4,7 +4,7 @@ build-backend = "setuptools.build_meta"
|
||||
|
||||
[project]
|
||||
name = "netbox-customer-export"
|
||||
version = "0.4.0"
|
||||
version = "0.5.0"
|
||||
description = "NetBox-Plugin: Kundendokumentation (PDF/Word) für Standorte, Lokationen, Mandanten und Mandantengruppen"
|
||||
readme = "README.md"
|
||||
requires-python = ">=3.10"
|
||||
|
||||
Reference in New Issue
Block a user