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51
fix-up.mjs
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51
fix-up.mjs
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#!/usr/bin/env node
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// fix-svg.mjs
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// Usage: node fix-svg.mjs input.svg output.svg 10 "#202020"
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import { readFileSync, writeFileSync } from "node:fs";
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import { DOMParser, XMLSerializer } from "@xmldom/xmldom";
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const input = process.argv[2];
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const output = process.argv[3];
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const margin = Number.parseFloat(process.argv[4] ?? "0");
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const bg = process.argv[5] ?? null;
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if (!input || !output) {
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process.exit(1);
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}
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const xml = readFileSync(input, "utf8");
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const doc = new DOMParser().parseFromString(xml, "image/svg+xml");
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const svg = doc.documentElement;
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if (!svg || svg.tagName.toLowerCase() !== "svg") {
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process.exit(1);
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}
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// 1) Adjust viewBox (or derive it from root width/height if needed)
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const vb = svg.getAttribute("viewBox");
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if (vb) {
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const parts = vb.trim().split(/\s+/).map((s) => Number.parseFloat(s));
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if (parts.length === 4 && parts.every((n) => Number.isFinite(n))) {
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let [x, y, w, h] = parts;
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x -= margin;
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y -= margin;
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w += margin * 2;
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h += margin * 2;
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svg.setAttribute("viewBox", `${x} ${y} ${w} ${h}`);
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}
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}
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// Remove ONLY root width/height so viewBox governs scaling (optional but common)
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if (svg.hasAttribute("width")) { svg.removeAttribute("width"); }
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if (svg.hasAttribute("height")) { svg.removeAttribute("height"); }
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// 2) Set global background color (no inserted rect): root style background
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if (bg) {
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const style = svg.getAttribute("style") ?? "";
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const next = style.trim().length > 0 ? `${style.trim().replace(/;+\s*$/, "")};background:${bg}` : `background:${bg}`;
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svg.setAttribute("style", next);
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}
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const out = new XMLSerializer().serializeToString(doc);
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writeFileSync(output, out);
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37
fix2.mjs
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37
fix2.mjs
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#!/usr/bin/env node
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import { readFileSync, writeFileSync } from "node:fs";
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import { SVG, registerWindow } from "@svgdotjs/svg.js";
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import { createSVGWindow } from "svgdom";
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const input = process.argv[2];
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const output = process.argv[3];
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const margin = Number.parseFloat(process.argv[4] ?? "0");
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const bg = process.argv[5] ?? null;
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if (!input || !output) {
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process.exit(1);
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}
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const window = createSVGWindow();
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const document = window.document;
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registerWindow(window, document);
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const raw = readFileSync(input, "utf8");
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const canvas = SVG(document.documentElement);
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canvas.svg(raw);
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const box = canvas.bbox(); // REAL geometric bbox
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const x = box.x - margin;
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const y = box.y - margin;
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const w = box.width + margin * 2;
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const h = box.height + margin * 2;
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canvas.viewbox(x, y, w, h);
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if (bg) {
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canvas.attr("style", `background:${bg}`);
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}
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writeFileSync(output, canvas.svg());
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63
fix3.mjs
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63
fix3.mjs
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#!/usr/bin/env node
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import { readFileSync, writeFileSync } from "node:fs";
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import { Resvg } from "@resvg/resvg-js";
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const input = process.argv[2];
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const output = process.argv[3];
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const margin = Number.parseFloat(process.argv[4] ?? "0");
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const bg = process.argv[5] ?? null;
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if (!input || !output) {
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process.exit(1);
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}
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const raw = readFileSync(input, "utf8");
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// Render once to compute tight bounding box
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const resvg = new Resvg(raw, {
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fitTo: {
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mode: "original"
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}
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});
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const { width, height } = resvg.render();
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// Resvg gives us rendered size, but we need geometry bounds.
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// Use bounding box API instead:
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const bbox = resvg.getBBox();
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if (!bbox) {
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process.exit(1);
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}
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const x = bbox.x - margin;
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const y = bbox.y - margin;
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const w = bbox.width + margin * 2;
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const h = bbox.height + margin * 2;
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// Rewrite root SVG viewBox safely
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const updated = raw
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.replace(/viewBox="[^"]*"/, `viewBox="${x} ${y} ${w} ${h}"`)
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.replace(/\swidth="[^"]*"/, "")
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.replace(/\sheight="[^"]*"/, "");
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let finalSvg = updated;
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if (bg) {
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finalSvg = finalSvg.replace(
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/<svg\b([^>]*)>/,
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(match, attrs) => {
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if (/style=/.test(attrs)) {
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return `<svg${attrs.replace(
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/style="([^"]*)"/,
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(_, style) => `style="${style};background:${bg}"`
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)}>`;
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}
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return `<svg${attrs} style="background:${bg}">`;
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}
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);
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}
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writeFileSync(output, finalSvg);
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125
notes.md
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125
notes.md
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These notes are verbatim copies from ChatGPT 5.2 by OpenAI
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-----------------------------------------------------------
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Now you are thinking in the correct direction.
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Yes — the clean solution is:
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* Eliminate the outline paths.
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* Keep real `<text>`.
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* Use a font that reproduces KiCad’s stroke font metrics exactly.
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* Let the browser render everything.
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And yes, generating a WOFF from KiCad’s internal stroke font is the right conceptual move.
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However, there are technical realities:
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KiCad’s “stroke font” is not a normal outline font.
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It is:
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* Single-line stroke geometry
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* Defined as polylines
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* No filled contours
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* No traditional glyph metrics tables
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* No hinting
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* No kerning tables
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To make a usable web font from it, you would need to:
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1. Convert each stroke glyph into a proper outline glyph (closed contours).
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2. Define ascent, descent, em size.
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3. Define advance widths to match KiCad’s internal metrics.
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4. Package as TTF/OTF.
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5. Convert to WOFF.
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This is completely doable.
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The important part is metric matching, not visual matching.
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If you replicate:
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* Advance width
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* Baseline
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* Scaling
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* Anchor positioning
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then browser `<text>` will land exactly where KiCad paths would have landed.
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Once that is true:
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* You can remove all path glyphs.
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* Keep only `<text>`.
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* Remove invisible duplicate `<text>`.
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* Remove `textLength`.
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* Ship a tiny SVG + one WOFF.
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* Selection highlight works.
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* Copy works.
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* Geometry matches.
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* SVG size collapses dramatically.
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This is architecturally clean.
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The critical insight:
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You do not need pixel-perfect glyph shape match.
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You need metric-perfect match.
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If the browser font has identical advance widths and baseline behavior, alignment will match.
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Then stroke vs fill rendering becomes a stylistic choice.
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So yes:
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Creating a WOFF from KiCad’s stroke font is the correct long-term solution if you want lean, high-utility schematics rendered in browser-native text.
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That is a fundamentally better pipeline than fighting with baked path outlines.
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--------------
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Yes. Short term, that is entirely reasonable.
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KiCad’s default schematic stroke font is very close to a simple, monoline geometric sans.
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Fonts that typically align closely in metrics and feel:
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* DejaVu Sans
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* Liberation Sans
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* Nimbus Sans
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* Noto Sans
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* Arial
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Among these, **Liberation Sans** and **Nimbus Sans** often track advance widths closer to legacy CAD-style layouts than DejaVu.
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What matters for alignment is:
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* Advance width per glyph
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* Uniform stroke feel
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* Conservative kerning (minimal)
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Disable browser kerning when testing:
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```css
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text {
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font-kerning: none;
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font-feature-settings: "kern" 0;
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}
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```
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KiCad does not apply complex kerning in schematic text, so browser kerning can introduce drift.
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Also remove:
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```
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textLength
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lengthAdjust
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```
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while testing alignment.
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If you get advance widths to match within <1%, the overlay will look correct even if glyph curves differ slightly.
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For schematic readability, metric similarity is more important than exact glyph shape.
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8
package.json
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8
package.json
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{
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"dependencies": {
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"@resvg/resvg-js": "^2.6.2",
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"@svgdotjs/svg.js": "^3.2.5",
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"@xmldom/xmldom": "^0.8.11",
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"svgdom": "^0.1.23"
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}
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}
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18
svgo.config.js
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18
svgo.config.js
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export default {
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plugins: [
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{
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name: "removeViewBox",
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active: false
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},
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{
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name: "removeDimensions",
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active: true
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},
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{
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name: "removeAttrs",
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params: {
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attrs: "(fill|style)"
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}
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}
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]
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};
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4
t1.sh
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4
t1.sh
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#kicad-cli sch export svg -t "devilholk" -e -n -o output --default-font "DejaVu Sans" ~/Projekt/Electronics/low-current-nfet-array/main.kicad_sch
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kicad-cli sch export svg -t "devilholk" -e -n -o output ~/Projekt/Electronics/low-current-nfet-array/main.kicad_sch
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node fix3.mjs output/main.svg output/main-fixed.svg 10 '#111'
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