18e0db75a9
GlobalPlatform models this explicitly (GP Card Spec v2.3.1 Table 11-48, load parameters): C6 = non-volatile code, C7 = volatile data, C8 = non-volatile data, and 11.5.2.3.7 - when the card makes no code/data distinction the required minimum is C6 + C8. The analysis now reports it: - capmem.memory_json() accepts the load file size (all CAP components - the package image the card stores) and returns code.load_file, nvram.requirement = load_file + persistent data, and sets the suggested C6 to the load file (the bytecode-only Method.cap figure stays in code.method_component); _cap_info_body passes the size it already computed. - The CAP estimate box (both the RAM installer and the SCP81 Install-from-.cap form) leads with "NVRAM requirement ≈ code image + data" plus the RAM estimate, keeps the bytecode/other-component split and the full data breakdown in Details, and carries the GP citation with the caveats (card memory management, allocation rounding and the registry entry are not included; the static field image appears in both parts). - An older server response without code.load_file still renders (the bytecode size is used as the fallback). Tests: Python +1 (load-file semantics) with extended cap-info assertions, frontend +1 (renderer + fallback). Help EN/RU, docs/api.md, AGENTS. 587 frontend / 472 Python green; version 3.5.15; sw simple-v268.
154 lines
6.6 KiB
JavaScript
154 lines
6.6 KiB
JavaScript
const { test } = require('node:test');
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const assert = require('node:assert');
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const fs = require('node:fs');
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const path = require('node:path');
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const html = fs.readFileSync(path.join(__dirname, '..', 'index.html'), 'utf8');
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function extractBlock(startMarker, endMarker) {
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const start = html.indexOf(startMarker);
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const end = html.indexOf(endMarker, start);
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if (start < 0 || end < 0) throw new Error('block not found: ' + startMarker);
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return html.slice(start, end);
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}
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function extractFunc(src, name, asyncFn) {
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const re = new RegExp('function\\s+' + name + '\\s*\\([^)]*\\)\\s*\\{');
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const m = re.exec(src);
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if (!m) throw new Error('function ' + name + ' not found');
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let i = m.index + m[0].length - 1;
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let depth = 0;
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for (; i < src.length; i++) {
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if (src[i] === '{') depth++;
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else if (src[i] === '}') {
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depth--;
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if (depth === 0) break;
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}
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}
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return (asyncFn ? 'async ' : '') + src.slice(m.index, i + 1);
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}
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// Rewrite the top-level const so it leaks out of sloppy-mode eval.
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eval(extractBlock('const _capAnalysis = {', 'function capFileKey').replace(/^const /gm, 'var '));
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eval(extractFunc(html, 'capFileKey'));
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eval(extractFunc(html, 'capGateOk'));
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eval(extractFunc(html, 'capMemBytes'));
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eval(extractFunc(html, 'capMemHtml'));
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eval(extractFunc(html, 'capAnalyzeFile', true));
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globalThis.esc = s => s;
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globalThis.t = s => s;
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globalThis.capRenderAnalysis = () => {};
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globalThis.pysimApplyAvailability = () => {};
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function resetState() {
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_capAnalysis.ram = { key: null, status: 'idle', memory: null, error: null, token: 0 };
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_capAnalysis.scripts = { key: null, status: 'idle', memory: null, error: null, token: 0 };
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}
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function memFixture() {
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return {
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code: { method_component: 2048, load_file: 3000 },
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nvram: { static_image: 12, array_init: 4, install_objects: 100, header_overhead: 12, ref_storage: 8, total: 136, runtime: 0, requirement: 3136 },
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ram: { transient_arrays: 16, runtime_transient: 0, peak_frame: 8, total: 24 },
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suggested: { c6: 3000, c7: 272, c8: 136 },
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warnings: [],
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};
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}
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test('capMemBytes formats bytes and kilobytes', () => {
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assert.strictEqual(capMemBytes(0), '0 B');
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assert.strictEqual(capMemBytes(1023), '1023 B');
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assert.strictEqual(capMemBytes(1024), '1.0 kB');
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assert.strictEqual(capMemBytes(1587), '1.5 kB');
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assert.strictEqual(capMemBytes(null), '0 B');
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});
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test('capMemHtml renders the NVRAM requirement, breakdown and warnings', () => {
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const mem = memFixture();
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mem.warnings = ['method class[0].token[1]: unknown opcode 0xAA, scan stopped'];
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const out = capMemHtml(mem);
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assert.ok(out.includes('CAP requirements (estimate)'), out);
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// C6+C8-style total: load file + persistent data
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assert.ok(out.includes('NVRAM requirement ≈ 3.1 kB (code image 2.9 kB + data 136 B)'), out);
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assert.ok(out.includes('RAM (volatile): 24 B'), out);
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assert.ok(out.includes('Code image (load file): 2.9 kB'), out);
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assert.ok(out.includes('bytecode (Method.cap): 2.0 kB'), out);
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assert.ok(out.includes('other components: 952 B'), out);
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assert.ok(out.includes('Persistent data (NVRAM): 136 B'), out);
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assert.ok(out.includes('Static image: 12 B'), out);
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assert.ok(out.includes('Reference storage: 8 B'), out);
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assert.ok(out.includes('Peak method frame: 8 B'), out);
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assert.ok(out.includes('C6=3000 C7=0x0110 C8=0x0088'), out);
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assert.ok(out.includes('Table 11-48'), out);
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assert.ok(out.includes('Estimate only'), out);
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assert.ok(out.includes('unknown opcode 0xAA'), out);
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assert.strictEqual(capMemHtml(null), '');
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});
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test('capMemHtml falls back to the bytecode size on older server responses', () => {
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const mem = memFixture();
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delete mem.code.load_file;
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delete mem.nvram.requirement;
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const out = capMemHtml(mem);
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assert.ok(out.includes('NVRAM requirement ≈ 2.1 kB (code image 2.0 kB + data 136 B)'), out);
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});
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test('capGateOk gates the RAM install op and the scripts form', () => {
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resetState();
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globalThis.document = { getElementById: id => (id === 'ram-op' ? { value: 'install-cap' } : null) };
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assert.strictEqual(capGateOk('ram'), false);
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_capAnalysis.ram.status = 'ok';
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assert.strictEqual(capGateOk('ram'), true);
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_capAnalysis.scripts.status = 'error';
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assert.strictEqual(capGateOk('scripts'), false);
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// other RAM ops (explore/delete) are not gated
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globalThis.document = { getElementById: id => (id === 'ram-op' ? { value: 'explore' } : null) };
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assert.strictEqual(capGateOk('ram'), true);
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});
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test('capAnalyzeFile stores the estimate and ignores stale responses', async () => {
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resetState();
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const pending = [];
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globalThis.ramReadFileHex = async f => f.name + 'hex';
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globalThis.pysimFetch = (url, body) => new Promise(resolve => pending.push(resolve));
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const f1 = { name: 'a.cap', size: 1, lastModified: 1 };
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const f2 = { name: 'b.cap', size: 2, lastModified: 2 };
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const p1 = capAnalyzeFile(f1, 'ram');
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const p2 = capAnalyzeFile(f2, 'ram');
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assert.strictEqual(_capAnalysis.ram.status, 'analyzing');
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// let both file reads settle so the fetches are in flight
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for (let i = 0; i < 10 && pending.length < 2; i++) await Promise.resolve();
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// resolve the first (stale) response after the second selection
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pending[0]({ ok: true, memory: { code: { method_component: 111 } } });
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pending[1]({ ok: true, memory: { code: { method_component: 222 } } });
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await Promise.all([p1, p2]);
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assert.strictEqual(_capAnalysis.ram.status, 'ok');
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assert.strictEqual(_capAnalysis.ram.memory.code.method_component, 222);
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assert.strictEqual(_capAnalysis.ram.key, capFileKey(f2));
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globalThis.pysimFetch = undefined;
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});
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test('capAnalyzeFile records server and network failures', async () => {
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resetState();
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globalThis.ramReadFileHex = async () => '00';
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globalThis.pysimFetch = async () => ({ ok: false, error: 'cap parse failed: File is not a zip file' });
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await capAnalyzeFile({ name: 'bad.cap', size: 1, lastModified: 1 }, 'scripts');
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assert.strictEqual(_capAnalysis.scripts.status, 'error');
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assert.ok(_capAnalysis.scripts.error.includes('not a zip file'), _capAnalysis.scripts.error);
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globalThis.pysimFetch = async () => { throw new Error('boom'); };
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await capAnalyzeFile({ name: 'net.cap', size: 1, lastModified: 1 }, 'scripts');
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assert.strictEqual(_capAnalysis.scripts.status, 'error');
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assert.strictEqual(_capAnalysis.scripts.error, 'boom');
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});
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test('the CAP inputs and their action buttons are wired', () => {
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assert.match(html, /id="ram-cap-file"[^>]*onchange="ramCapFileChanged\(\)"/);
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assert.match(html, /id="scripts-cap-file"[^>]*onchange="scriptsCapFileChanged\(\)"/);
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assert.match(html, /data-cap-gate="ram"/);
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assert.match(html, /data-cap-gate="scripts"/);
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assert.match(html, /id="ram-cap-info"/);
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assert.match(html, /id="scripts-cap-info"/);
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assert.match(html, /\/api\/cap-info/);
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});
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