feat: wip on implementing gemini analyzer
This commit is contained in:
@@ -7,6 +7,7 @@
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<PackageVersion Include="Microsoft.Extensions.Configuration" Version="9.0.7" />
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<PackageVersion Include="Microsoft.Extensions.Configuration.Json" Version="9.0.7" />
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<PackageVersion Include="Microsoft.Extensions.Hosting" Version="9.0.7" />
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<PackageVersion Include="Microsoft.Extensions.Http" Version="9.0.7" />
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<PackageVersion Include="Microsoft.Extensions.Logging" Version="9.0.7" />
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<PackageVersion Include="NAudio" Version="2.2.1" />
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<PackageVersion Include="Serilog" Version="4.3.0" />
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@@ -4,13 +4,15 @@ internal sealed class DefaultCommand(
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IFileSystem fileSystem,
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IAnsiConsole console,
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IAudioExtractor audioExtractor,
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ITranscriber transcriber
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ITranscriber transcriber,
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ITranscriptAnalyzer transcriptAnalyzer
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) : AsyncCommand<DefaultCommand.Settings>
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{
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private readonly IFileSystem _fileSystem = fileSystem ?? throw new ArgumentNullException(nameof(fileSystem));
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private readonly IAnsiConsole _console = console ?? throw new ArgumentNullException(nameof(console));
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private readonly IAudioExtractor _audioExtractor = audioExtractor ?? throw new ArgumentNullException(nameof(audioExtractor));
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private readonly ITranscriber _transcriber = transcriber ?? throw new ArgumentNullException(nameof(transcriber));
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private readonly ITranscriptAnalyzer _transcriptAnalyzer = transcriptAnalyzer ?? throw new ArgumentNullException(nameof(transcriptAnalyzer));
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internal class Settings : CommandSettings
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{
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@@ -79,6 +81,15 @@ internal sealed class DefaultCommand(
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_console.MarkupLine($"[blue]Transcription completed[/] [green]successfully![/]");
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TranscriptAnalysis? analysis = null;
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await _console.Status()
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.Spinner(Spinner.Known.Dots)
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.StartAsync("Analyzing transcript...", async ctx =>
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{
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analysis = await _transcriptAnalyzer.AnalyzeAsync(transcriptionSegments);
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});
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return 0;
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}
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}
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@@ -38,89 +38,6 @@ finally
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await Log.CloseAndFlushAsync();
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}
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// // Step 3: Split the wave stream into 2 minute segments
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// waveStream.Position = 0;
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// var segmentDuration = TimeSpan.FromMinutes(2);
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// var segments = new List<MemoryStream>();
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// using var waveReader = new WaveFileReader(waveStream);
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// var segmentCount = (int)Math.Ceiling(waveReader.TotalTime.TotalMilliseconds / segmentDuration.TotalMilliseconds);
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// Directory.CreateDirectory("segments");
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// foreach (var i in Enumerable.Range(0, segmentCount))
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// {
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// waveStream.Position = 0;
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// using var segmentWaveReader = new WaveFileReader(waveStream);
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// var segment = segmentWaveReader.ToSampleProvider()
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// .Skip(i * segmentDuration)
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// .Take(segmentDuration);
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// var segmentProvider = segment.ToWaveProvider16();
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// var segmentStream = new MemoryStream();
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// WaveFileWriter.WriteWavFileToStream(segmentStream, segmentProvider);
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// segmentStream.Position = 0;
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// segments.Add(segmentStream);
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// }
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// // Step 4: Transcribe each segment using Whisper
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// using var modelMemoryStream = new MemoryStream();
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// var model = await WhisperGgmlDownloader.Default.GetGgmlModelAsync(GgmlType.TinyEn);
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// await model.CopyToAsync(modelMemoryStream);
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// var whisperFactory = WhisperFactory.FromBuffer(modelMemoryStream.ToArray());
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// using var whisperProcessor = whisperFactory.CreateBuilder()
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// .WithLanguage("en")
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// .Build();
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// var completeTranscription = new StringBuilder();
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// foreach (var (i, segment) in segments.Select((s, index) => (index, s)))
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// {
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// var durationOffset = TimeSpan.FromMilliseconds(i * segmentDuration.TotalMilliseconds);
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// var segmentTranscription = new StringBuilder();
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// await foreach (var result in whisperProcessor.ProcessAsync(segment, CancellationToken.None))
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// {
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// var startTime = result.Start + durationOffset;
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// var endTime = result.End + durationOffset;
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// segmentTranscription.AppendLine(CultureInfo.CurrentCulture, $"[{startTime:hh\\:mm\\:ss} - {endTime:hh\\:mm\\:ss}] {result.Text}");
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// }
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// completeTranscription.Append(segmentTranscription);
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// }
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// // Step 5: Send the transcription to LLM for analysis
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// // TODO: Explore this prompt further...seems break
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// // when transcription is long
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// var prompt = $$"""
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// I need your help to transform my YouTube live stream transcript into engaging YouTube Shorts. Act as my content editor and pinpoint **all potential candidate segments** that are perfect for short-form video. I'm looking for clips that are:
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// * **Funny:** Moments that will make viewers laugh.
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// * **Informative:** Sections packed with valuable information or tips.
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// * **Insightful:** Portions offering unique perspectives or 'aha\!' moments.
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// For each suggested short, please provide:
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// * The **start time** of the initial segment and the **end time** of the final segment. The duration of each short should be no longer than 3 minutes, but **aim for durations between 15 seconds and 60 seconds**. However, the short **must be as long as necessary to capture the complete thought or idea**, even if it means exceeding the target range or extending slightly to capture all necessary dialogue.
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// * A concise **title** that grabs attention.
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// * A brief **description** highlighting the short's content and its appeal.
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// * An **explanation** of why this particular segment is suitable for a YouTube Short, focusing on its potential for discoverability and engagement.
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// Please format your response as a JSON array of objects with the following structure:
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// ```json
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// {
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// ""title"": ""string"",
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// "start_time": "string",
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// "end_time": "string",
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// "description": "string",
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// "explanation": "string"
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// }
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// ```
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// Here is the transcript of my YouTube live stream:
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// {{completeTranscription}}
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// """;
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// if (string.IsNullOrWhiteSpace(apiKey))
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// {
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// throw new InvalidOperationException("GeminiApiKey is not configured in appsettings.json.");
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@@ -17,3 +17,4 @@ global using StreamShorts.Console.Commands;
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global using StreamShorts.Console.Hosting;
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global using StreamShorts.Library.Media.Audio;
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global using StreamShorts.Library.Transcription;
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global using StreamShorts.Library.Analysis;
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@@ -0,0 +1,88 @@
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using System.Text;
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using System.Text.Json;
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using System.Text.Json.Serialization;
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using NAudio.CoreAudioApi;
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using StreamShorts.Library.Transcription;
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namespace StreamShorts.Library.Analysis;
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public sealed class GeminiAnalyzer(
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IHttpClientFactory httpClientFactory,
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string apiKey
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) : ITranscriptAnalyzer
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{
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private readonly IHttpClientFactory _httpClientFactory = httpClientFactory ?? throw new ArgumentNullException(nameof(httpClientFactory));
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private readonly string _apiKey = apiKey ?? throw new ArgumentNullException(nameof(apiKey));
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public async Task<TranscriptAnalysis> AnalyzeAsync(IEnumerable<TranscriptionSegment> segments)
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{
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using var client = _httpClientFactory.CreateClient();
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client.Timeout = TimeSpan.FromMinutes(5);
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// TODO: Load prompt from resource file
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var requestUrl = $"https://generativelanguage.googleapis.com/v1beta/models/gemini-2.5-flash-lite:generateContent?key={_apiKey}";
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using var request = new HttpRequestMessage(HttpMethod.Post, requestUrl)
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{
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Content = new StringContent(
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JsonSerializer.Serialize(new
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{
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contents = new[]
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{
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new
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{
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role = "user",
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parts = new[]
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{
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new
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{
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text = prompt
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}
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},
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}
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},
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generationConfig = new
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{
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responseMimeType = "application/json",
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}
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}),
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Encoding.UTF8,
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"application/json"
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)
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};
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var response = await client.SendAsync(request).ConfigureAwait(false);
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var responseContent = await response.Content.ReadAsStringAsync().ConfigureAwait(false);
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var responseJson = JsonSerializer.Deserialize<LLMResponse>(responseContent);
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var candidatesText = responseJson?
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.Candidates?
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.FirstOrDefault()?
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.Content
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.Parts?.FirstOrDefault()?
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.Text;
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var clips = JsonSerializer.Deserialize<List<ShortClip>>(candidatesText ?? string.Empty);
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return new TranscriptAnalysis(clips ?? []);
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}
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}
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// TODO: Sort this shit out
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record LLMResponse(
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[property: JsonPropertyName("candidates")]
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Candidate[] Candidates
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);
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record Candidate(
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[property: JsonPropertyName("content")]
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Content Content
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);
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record Content(
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[property: JsonPropertyName("parts")]
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Part[] Parts
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);
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record Part(
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[property: JsonPropertyName("text")]
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string Text
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);
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@@ -0,0 +1,8 @@
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using StreamShorts.Library.Transcription;
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namespace StreamShorts.Library.Analysis;
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public interface ITranscriptAnalyzer
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{
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Task<TranscriptAnalysis> AnalyzeAsync(IEnumerable<TranscriptionSegment> segments);
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}
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@@ -0,0 +1,16 @@
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using System.Text.Json.Serialization;
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namespace StreamShorts.Library.Analysis;
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public record ShortClip(
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[property: JsonPropertyName("title")]
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string Title,
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[property: JsonPropertyName("description")]
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string Description,
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[property: JsonPropertyName("explanation")]
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string Explanation,
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[property: JsonPropertyName("start_time")]
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TimeSpan StartTime,
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[property: JsonPropertyName("end_time")]
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TimeSpan EndTime
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);
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@@ -0,0 +1,6 @@
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namespace StreamShorts.Library.Analysis;
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public class TranscriptAnalysis(IEnumerable<ShortClip> shortClips)
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{
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public IEnumerable<ShortClip> ShortClips { get; init; } = shortClips;
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}
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@@ -0,0 +1,28 @@
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I need your help to transform my YouTube live stream transcript into engaging YouTube Shorts. Act as my content editor and pinpoint **all potential candidate segments** that are perfect for short-form video. I'm looking for clips that are:
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- **Funny:** Moments that will make viewers laugh.
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- **Informative:** Sections packed with valuable information or tips.
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- **Insightful:** Portions offering unique perspectives or 'aha\!' moments.
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For each suggested short, please provide:
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- The **start time** of the initial segment and the **end time** of the final segment. The duration of each short should be no longer than 3 minutes, but **aim for durations between 15 seconds and 60 seconds**. However, the short **must be as long as necessary to capture the complete thought or idea**, even if it means exceeding the target range or extending slightly to capture all necessary dialogue.
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- A concise **title** that grabs attention.
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- A brief **description** highlighting the short's content and its appeal.
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- An **explanation** of why this particular segment is suitable for a YouTube Short, focusing on its potential for discoverability and engagement.
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Please format your response as a JSON array of objects with the following structure:
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```json
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{
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"title": "string",
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"start_time": "string",
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"end_time": "string",
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"description": "string",
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"explanation": "string"
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}
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```
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Here is the transcript of my YouTube live stream:
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{0}
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@@ -1,6 +1,7 @@
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<Project Sdk="Microsoft.NET.Sdk">
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<ItemGroup>
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<PackageReference Include="FFMpegCore" />
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<PackageReference Include="Microsoft.Extensions.Http" />
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<PackageReference Include="NAudio" />
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<PackageReference Include="Whisper.net.AllRuntimes" />
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</ItemGroup>
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