496cc5a6b2
- script-v3: reworked with initialActions channel mapping, freq detection
by name, single-channel duplication, full expression evaluator (pow, arithmetic)
- basic-v2: handle frequencyControl:true, 3-channel (ch3 ignored)
- funscript/draw: resample {at,pos} timeline to 100ms ticks via linear interpolation
- audio: resample flat float array to 100ms ticks using length in seconds
- EvaluateExpression replaces ResolveExpr: DataTable.Compute + pow() pre-processing
- All types: single-channel patterns duplicate to both A/B
- All types: missing frequency data uses fixed 150ms default
471 lines
18 KiB
C#
471 lines
18 KiB
C#
using System.Data;
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using System.Globalization;
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using System.Net.Http;
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using System.Text;
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using System.Text.Json;
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using System.Text.RegularExpressions;
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namespace Substation;
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public record XToysPattern(string Name, List<WaveFrame> ChannelA, List<WaveFrame> ChannelB);
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public static class XToysPatternImporter
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{
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static readonly HttpClient Http = new();
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public static async Task<XToysPattern> ImportAsync(string url)
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{
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var patternId = ExtractPatternId(url);
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if (patternId == null)
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throw new ArgumentException("Could not extract pattern ID from URL. Expected format: https://xtoys.app/patterns/<ID>");
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var body = JsonSerializer.Serialize(new { data = new { patternID = patternId } });
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var content = new StringContent(body, Encoding.UTF8, "application/json");
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var response = await Http.PostAsync("https://xtoys.app/api/getPatternv2", content);
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response.EnsureSuccessStatusCode();
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var json = await response.Content.ReadAsStringAsync();
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return Parse(json);
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}
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static int FreqPctToMs(byte freqPct)
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{
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// xToys frequency: 0% = deep (1000ms), 100% = buzzy (10ms)
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return (int)Math.Round(1000 - 9.9 * freqPct);
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}
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static string? ExtractPatternId(string url)
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{
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var match = Regex.Match(url, @"/patterns/([A-Za-z0-9_-]+)");
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return match.Success ? match.Groups[1].Value : null;
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}
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static XToysPattern Parse(string json)
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{
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using var doc = JsonDocument.Parse(json);
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var pattern = doc.RootElement.GetProperty("result").GetProperty("pattern");
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var name = pattern.GetProperty("name").GetString() ?? "Unknown";
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var patternType = pattern.GetProperty("type").GetString() ?? "script-v3";
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var patternData = pattern.GetProperty("patternData");
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return patternType switch
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{
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"basic-v2" => ParseBasicV2(name, patternData),
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"funscript" => ParseFunscript(name, patternData),
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"draw" => ParseFunscript(name, patternData),
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"audio" => ParseAudio(name, pattern, patternData),
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"script-v3" => ParseScriptV3(name, patternData),
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_ => ParseScriptV3(name, patternData)
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};
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}
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// ── script-v3: slider-driven, arbitrary pattern names, initialActions channel mapping ──
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static XToysPattern ParseScriptV3(string name, JsonElement patternData)
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{
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var sliders = ResolveSliders(patternData);
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bool hasFreq = patternData.TryGetProperty("frequencyControl", out var fc) && fc.GetBoolean();
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int channelCount = patternData.TryGetProperty("channels", out var cc) ? cc.GetInt32() : 2;
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// Parse initialActions to map pattern names → channels
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var patternToChannel = new Dictionary<string, int>();
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if (patternData.TryGetProperty("initialActions", out var actions))
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{
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foreach (var action in actions.EnumerateArray())
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{
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if (action.TryGetProperty("type", out var t) && t.GetString() == "updatePattern")
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{
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var patName = action.GetProperty("pattern").GetString()!;
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var channels = action.GetProperty("channels");
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int ch = 1;
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if (channels.TryGetProperty("1", out var c1) && c1.GetBoolean()) ch = 1;
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else if (channels.TryGetProperty("2", out var c2) && c2.GetBoolean()) ch = 2;
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patternToChannel[patName] = ch;
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}
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}
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}
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// Get all pattern names
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var patterns = patternData.GetProperty("patterns");
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var patternNames = new List<string>();
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foreach (var prop in patterns.EnumerateObject())
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patternNames.Add(prop.Name);
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// Classify patterns: frequency (name contains "freq") vs intensity
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var intPatterns = new List<(string name, int channel)>();
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var freqPatterns = new List<(string name, int channel)>();
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foreach (var pname in patternNames)
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{
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int ch = patternToChannel.GetValueOrDefault(pname, 1);
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if (hasFreq && pname.Contains("freq", StringComparison.OrdinalIgnoreCase))
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freqPatterns.Add((pname, ch));
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else
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intPatterns.Add((pname, ch));
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}
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// Evaluate patterns
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var intByChannel = new Dictionary<int, byte[]>();
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var freqByChannel = new Dictionary<int, byte[]>();
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foreach (var (pname, ch) in intPatterns)
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intByChannel[ch] = EvaluateLoops(patterns.GetProperty(pname), sliders);
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foreach (var (pname, ch) in freqPatterns)
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freqByChannel[ch] = EvaluateLoops(patterns.GetProperty(pname), sliders);
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// Get arrays for each channel (default to empty)
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var intA = intByChannel.GetValueOrDefault(1, Array.Empty<byte>());
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var intB = channelCount >= 2
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? intByChannel.GetValueOrDefault(2, intA)
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: intA; // single channel → duplicate
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var freqA = freqByChannel.GetValueOrDefault(1, Array.Empty<byte>());
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var freqB = channelCount >= 2
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? freqByChannel.GetValueOrDefault(2, freqA)
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: freqA;
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int tickCount = Math.Max(intA.Length, Math.Max(intB.Length, Math.Max(freqA.Length, freqB.Length)));
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if (tickCount == 0) tickCount = 1;
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byte defaultFreq = Freq.Compress(150);
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var channelA = new List<WaveFrame>(tickCount);
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var channelB = new List<WaveFrame>(tickCount);
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for (int i = 0; i < tickCount; i++)
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{
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byte ia = i < intA.Length ? intA[i] : (byte)0;
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byte ib = i < intB.Length ? intB[i] : (byte)0;
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byte fa = i < freqA.Length ? Freq.Compress(FreqPctToMs(freqA[i])) : defaultFreq;
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byte fb = i < freqB.Length ? Freq.Compress(FreqPctToMs(freqB[i])) : defaultFreq;
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channelA.Add(new WaveFrame(new[] { fa, fa, fa, fa }, new[] { ia, ia, ia, ia }));
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channelB.Add(new WaveFrame(new[] { fb, fb, fb, fb }, new[] { ib, ib, ib, ib }));
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}
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return new XToysPattern(name, channelA, channelB);
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}
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// ── basic-v2: channelData with loops/steps, optional frequencyControl ──
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static XToysPattern ParseBasicV2(string name, JsonElement patternData)
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{
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var emptySliders = new Dictionary<string, double>();
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const int defaultFreqMs = 150;
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bool hasFreq = patternData.TryGetProperty("frequencyControl", out var fc) && fc.GetBoolean();
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byte freqByte = Freq.Compress(defaultFreqMs);
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var intA = Array.Empty<byte>();
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var intB = Array.Empty<byte>();
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var freqA = Array.Empty<byte>();
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var freqB = Array.Empty<byte>();
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if (patternData.TryGetProperty("channelData", out var cd))
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{
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if (cd.TryGetProperty("1", out var ch1))
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{
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intA = EvaluateLoops(ch1, emptySliders);
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if (hasFreq) freqA = intA; // basic-v2 with freq: same data is freq
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}
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if (cd.TryGetProperty("2", out var ch2))
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{
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intB = EvaluateLoops(ch2, emptySliders);
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if (hasFreq) freqB = intB;
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}
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}
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// Single channel → duplicate
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if (intB.Length == 0 && intA.Length > 0)
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{
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intB = intA;
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freqB = freqA;
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}
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if (intA.Length == 0 && intB.Length > 0)
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{
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intA = intB;
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freqA = freqB;
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}
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int tickCount = Math.Max(intA.Length, intB.Length);
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if (tickCount == 0) tickCount = 1;
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var channelA = new List<WaveFrame>(tickCount);
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var channelB = new List<WaveFrame>(tickCount);
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for (int i = 0; i < tickCount; i++)
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{
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byte ia = i < intA.Length ? intA[i] : (byte)0;
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byte ib = i < intB.Length ? intB[i] : (byte)0;
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byte fa = hasFreq && i < freqA.Length ? Freq.Compress(FreqPctToMs(freqA[i])) : freqByte;
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byte fb = hasFreq && i < freqB.Length ? Freq.Compress(FreqPctToMs(freqB[i])) : freqByte;
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channelA.Add(new WaveFrame(new[] { fa, fa, fa, fa }, new[] { ia, ia, ia, ia }));
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channelB.Add(new WaveFrame(new[] { fb, fb, fb, fb }, new[] { ib, ib, ib, ib }));
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}
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return new XToysPattern(name, channelA, channelB);
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}
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// ── funscript / draw: {at, pos} timeline, resample to 100ms ticks ──
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static XToysPattern ParseFunscript(string name, JsonElement patternData)
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{
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byte freqByte = Freq.Compress(150);
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var intA = Array.Empty<byte>();
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var intB = Array.Empty<byte>();
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if (patternData.TryGetProperty("channelData", out var cd))
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{
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if (cd.TryGetProperty("1", out var ch1))
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intA = ResampleTimeline(ch1);
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if (cd.TryGetProperty("2", out var ch2))
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intB = ResampleTimeline(ch2);
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}
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// Single channel → duplicate
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if (intB.Length == 0 && intA.Length > 0) intB = intA;
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if (intA.Length == 0 && intB.Length > 0) intA = intB;
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int tickCount = Math.Max(intA.Length, intB.Length);
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if (tickCount == 0) tickCount = 1;
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var channelA = new List<WaveFrame>(tickCount);
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var channelB = new List<WaveFrame>(tickCount);
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for (int i = 0; i < tickCount; i++)
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{
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byte ia = i < intA.Length ? intA[i] : (byte)0;
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byte ib = i < intB.Length ? intB[i] : (byte)0;
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channelA.Add(new WaveFrame(new[] { freqByte, freqByte, freqByte, freqByte }, new[] { ia, ia, ia, ia }));
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channelB.Add(new WaveFrame(new[] { freqByte, freqByte, freqByte, freqByte }, new[] { ib, ib, ib, ib }));
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}
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return new XToysPattern(name, channelA, channelB);
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}
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static byte[] ResampleTimeline(JsonElement channelData)
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{
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// channelData is an array of {at, pos} objects (at in ms, pos 0-100)
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var points = new List<(double at, double pos)>();
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foreach (var pt in channelData.EnumerateArray())
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{
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double at = pt.GetProperty("at").GetDouble();
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double pos = pt.GetProperty("pos").GetDouble();
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points.Add((at, pos));
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}
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if (points.Count == 0) return Array.Empty<byte>();
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if (points.Count == 1) return new[] { (byte)Math.Clamp((int)Math.Round(points[0].pos), 0, 100) };
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double durationMs = points[^1].at;
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int tickCount = Math.Max(1, (int)Math.Ceiling(durationMs / 100.0));
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var result = new byte[tickCount];
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int ptIdx = 0;
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for (int t = 0; t < tickCount; t++)
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{
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double tickMs = t * 100.0;
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// Advance to the right pair of points
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while (ptIdx < points.Count - 2 && points[ptIdx + 1].at < tickMs)
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ptIdx++;
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// Linear interpolation between points[ptIdx] and points[ptIdx + 1]
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double pos;
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if (points[ptIdx + 1].at == points[ptIdx].at)
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pos = points[ptIdx].pos;
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else
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{
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double frac = (tickMs - points[ptIdx].at) / (points[ptIdx + 1].at - points[ptIdx].at);
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frac = Math.Clamp(frac, 0, 1);
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pos = points[ptIdx].pos + (points[ptIdx + 1].pos - points[ptIdx].pos) * frac;
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}
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result[t] = (byte)Math.Clamp((int)Math.Round(pos), 0, 100);
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}
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return result;
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}
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// ── audio: flat float array, resample to 100ms ticks ──
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static XToysPattern ParseAudio(string name, JsonElement pattern, JsonElement patternData)
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{
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byte freqByte = Freq.Compress(150);
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// Length is in seconds (from pattern.length or patternData.length)
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double lengthSec = 0;
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if (pattern.TryGetProperty("length", out var lenEl) && lenEl.ValueKind == JsonValueKind.Number)
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lengthSec = lenEl.GetDouble();
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else if (pattern.TryGetProperty("length", out var lenStr) && lenStr.ValueKind == JsonValueKind.String)
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double.TryParse(lenStr.GetString(), out lengthSec);
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double scale = patternData.TryGetProperty("scale", out var scaleEl) ? scaleEl.GetDouble() : 100;
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var intA = Array.Empty<byte>();
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var intB = Array.Empty<byte>();
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if (patternData.TryGetProperty("channelData", out var cd))
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{
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if (cd.TryGetProperty("1", out var ch1))
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intA = ResampleAudio(ch1, scale, lengthSec);
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if (cd.TryGetProperty("2", out var ch2))
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intB = ResampleAudio(ch2, scale, lengthSec);
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}
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// Single channel → duplicate
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if (intB.Length == 0 && intA.Length > 0) intB = intA;
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if (intA.Length == 0 && intB.Length > 0) intA = intB;
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int tickCount = Math.Max(intA.Length, intB.Length);
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if (tickCount == 0) tickCount = 1;
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var channelA = new List<WaveFrame>(tickCount);
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var channelB = new List<WaveFrame>(tickCount);
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for (int i = 0; i < tickCount; i++)
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{
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byte ia = i < intA.Length ? intA[i] : (byte)0;
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byte ib = i < intB.Length ? intB[i] : (byte)0;
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channelA.Add(new WaveFrame(new[] { freqByte, freqByte, freqByte, freqByte }, new[] { ia, ia, ia, ia }));
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channelB.Add(new WaveFrame(new[] { freqByte, freqByte, freqByte, freqByte }, new[] { ib, ib, ib, ib }));
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}
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return new XToysPattern(name, channelA, channelB);
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}
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static byte[] ResampleAudio(JsonElement channelData, double scale, double lengthSec)
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{
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// channelData is a flat array of float values (raw, need to divide by scale)
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var samples = new List<double>();
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foreach (var s in channelData.EnumerateArray())
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samples.Add(s.GetDouble() / scale * 100.0);
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if (samples.Count == 0) return Array.Empty<byte>();
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// Determine tick count from length (seconds → 100ms ticks)
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int tickCount;
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if (lengthSec > 0)
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tickCount = Math.Max(1, (int)Math.Ceiling(lengthSec * 10));
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else
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tickCount = samples.Count; // fallback: 1 sample per tick
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var result = new byte[tickCount];
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for (int t = 0; t < tickCount; t++)
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{
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// Map tick to sample index
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int idx = (int)Math.Round((double)t * samples.Count / tickCount);
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if (idx >= samples.Count) idx = samples.Count - 1;
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result[t] = (byte)Math.Clamp((int)Math.Round(samples[idx]), 0, 100);
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}
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return result;
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}
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// ── Shared helpers ──
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static Dictionary<string, double> ResolveSliders(JsonElement patternData)
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{
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var sliders = new Dictionary<string, double>();
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if (patternData.TryGetProperty("ma", out var ma))
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{
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foreach (var slider in ma.EnumerateArray())
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{
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var key = slider.GetProperty("key").GetString()!;
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var value = slider.GetProperty("value").GetDouble();
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sliders[key] = value;
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}
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}
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return sliders;
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}
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static byte[] EvaluateLoops(JsonElement loopsElement, Dictionary<string, double> sliders)
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{
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var values = new List<byte>();
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double lastEnd = 0;
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foreach (var loop in loopsElement.EnumerateArray())
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{
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var steps = loop.GetProperty("steps");
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foreach (var step in steps.EnumerateArray())
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{
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var type = step.GetProperty("type").GetString() ?? "straight";
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var time = EvaluateExpression(GetStepValue(step, "time"), sliders);
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var startVal = step.TryGetProperty("start", out var s)
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? (s.ValueKind == JsonValueKind.Null ? lastEnd : EvaluateExpression(GetStepValue(step, "start"), sliders))
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: lastEnd;
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var endVal = EvaluateExpression(GetStepValue(step, "end"), sliders);
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int ticks = Math.Max(1, (int)Math.Round(time / 0.1));
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for (int t = 0; t < ticks; t++)
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{
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double frac = (double)t / ticks;
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double v;
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if (type == "sine")
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v = startVal + (endVal - startVal) * (1 - Math.Cos(frac * Math.PI)) / 2;
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else
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v = startVal + (endVal - startVal) * frac;
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values.Add((byte)Math.Clamp((int)Math.Round(v), 0, 100));
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}
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lastEnd = endVal;
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}
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}
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return values.ToArray();
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}
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static string GetStepValue(JsonElement step, string propName)
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{
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if (!step.TryGetProperty(propName, out var el))
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return "0";
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return el.ValueKind switch
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{
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JsonValueKind.String => el.GetString() ?? "0",
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JsonValueKind.Number => el.GetDouble().ToString(CultureInfo.InvariantCulture),
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_ => "0"
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};
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}
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static double EvaluateExpression(string expr, Dictionary<string, double> sliders)
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{
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// Replace {var} references with slider values
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var resolved = Regex.Replace(expr, @"\{(\w+)\}", m =>
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sliders.TryGetValue(m.Groups[1].Value, out var val)
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? val.ToString(CultureInfo.InvariantCulture)
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: "0");
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// Try plain number first
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if (double.TryParse(resolved, CultureInfo.InvariantCulture, out var simple))
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return simple;
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// Pre-process pow(a, b) calls — DataTable.Compute doesn't support pow
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resolved = Regex.Replace(resolved, @"pow\(\s*([-\d.]+)\s*,\s*([-\d.]+)\s*\)", m =>
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{
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double a = double.Parse(m.Groups[1].Value, CultureInfo.InvariantCulture);
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double b = double.Parse(m.Groups[2].Value, CultureInfo.InvariantCulture);
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return Math.Pow(a, b).ToString("G15", CultureInfo.InvariantCulture);
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});
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// Evaluate with DataTable.Compute (handles +, -, *, /, parentheses)
|
|
try
|
|
{
|
|
var result = new DataTable().Compute(resolved, null);
|
|
return Convert.ToDouble(result, CultureInfo.InvariantCulture);
|
|
}
|
|
catch
|
|
{
|
|
// Fallback: try simple number
|
|
return double.TryParse(resolved, CultureInfo.InvariantCulture, out var fallback) ? fallback : 0;
|
|
}
|
|
}
|
|
}
|