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stroke-linecap=\"round\" stroke-linejoin=\"round\" stroke-width=\"2\">\u003Cpath d=\"M11.017 2.814a1 1 0 0 1 1.966 0l1.051 5.558a2 2 0 0 0 1.594 1.594l5.558 1.051a1 1 0 0 1 0 1.966l-5.558 1.051a2 2 0 0 0-1.594 1.594l-1.051 5.558a1 1 0 0 1-1.966 0l-1.051-5.558a2 2 0 0 0-1.594-1.594l-5.558-1.051a1 1 0 0 1 0-1.966l5.558-1.051a2 2 0 0 0 1.594-1.594zM20 2v4m2-2h-4\"\u002F>\u003Ccircle cx=\"4\" cy=\"20\" r=\"2\"\u002F>\u003C\u002Fg>",{"left":4,"top":4,"width":5,"height":5,"rotate":4,"vFlip":6,"hFlip":6,"body":44},"\u003Cg fill=\"none\" stroke=\"currentColor\" stroke-linecap=\"round\" stroke-linejoin=\"round\" stroke-width=\"2\">\u003Cpath d=\"M21.42 10.922a1 1 0 0 0-.019-1.838L12.83 5.18a2 2 0 0 0-1.66 0L2.6 9.08a1 1 0 0 0 0 1.832l8.57 3.908a2 2 0 0 0 1.66 0zM22 10v6\"\u002F>\u003Cpath d=\"M6 12.5V16a6 3 0 0 0 12 0v-3.5\"\u002F>\u003C\u002Fg>","\u003Cblockquote>\n\u003Cp>&quot;Edit and transcode in the web&quot; used to mean upload to a server or ffmpeg.wasm soft decode—wait on upload or slow, hot CPU. WebCodecs opens a third path: call device hardware codecs from the page. Understanding its layers and limits shows which tasks fit and which don't.\u003C\u002Fp>\n\u003C\u002Fblockquote>\n\u003Cp>\u003Cimg src=\"\u002Fblog\u002Fwebcodecs-video-in-browser\u002Fcover.webp\" alt=\"WebCodecs calls hardware codecs in browser—no server upload\">\u003C\u002Fp>\n\u003Ch2>What Problem Does WebCodecs Solve?\u003C\u002Fh2>\n\u003Cp>WebCodecs is a \u003Cstrong>low-level browser API\u003C\u002Fstrong> exposing OS\u002Fhardware video and audio codecs to JavaScript. Before it, front-end video meant server ffmpeg or ffmpeg compiled to WASM in-browser.\u003C\u002Fp>\n\u003Cp>Both old paths hurt: server = upload latency, backend cost, data leaves device; ffmpeg.wasm = pure software on CPU, often fraction-of-real-time on 1080p, fans spin. WebCodecs \u003Cstrong>uses dedicated hardware codec blocks\u003C\u002Fstrong>—most modern CPU\u002FGPU include H.264\u002FH.265 units.\u003C\u002Fp>\n\u003Ch2>Where Does It Sit in the Stack?\u003C\u002Fh2>\n\u003Cp>Understanding limits means seeing video processing layers. Reading a \u003Ccode>.mp4\u003C\u002Fcode> to export involves several—\u003Cstrong>WebCodecs only covers encode\u002Fdecode\u003C\u002Fstrong>:\u003C\u002Fp>\n\u003Ctable>\n\u003Cthead>\n\u003Ctr>\n\u003Cth>Layer\u003C\u002Fth>\n\u003Cth>Role\u003C\u002Fth>\n\u003Cth>Who handles\u003C\u002Fth>\n\u003C\u002Ftr>\n\u003C\u002Fthead>\n\u003Ctbody>\n\u003Ctr>\n\u003Ctd>Container mux\u002Fdemux\u003C\u002Ftd>\n\u003Ctd>Parse\u002Fpackage MP4, MOV; split A\u002FV tracks\u003C\u002Ftd>\n\u003Ctd>Not WebCodecs—mp4box.js, etc.\u003C\u002Ftd>\n\u003C\u002Ftr>\n\u003Ctr>\n\u003Ctd>Codec\u003C\u002Ftd>\n\u003Ctd>Compressed frames ↔ raw frames (H.264\u002FVP9\u002FAV1…)\u003C\u002Ftd>\n\u003Ctd>WebCodecs (VideoEncoder\u002FVideoDecoder)\u003C\u002Ftd>\n\u003C\u002Ftr>\n\u003Ctr>\n\u003Ctd>Raw frame processing\u003C\u002Ftd>\n\u003Ctd>Crop, scale, speed, filters, composite\u003C\u002Ftd>\n\u003Ctd>Canvas \u002F WebGL \u002F app code\u003C\u002Ftd>\n\u003C\u002Ftr>\n\u003Ctr>\n\u003Ctd>A\u002FV sync\u003C\u002Ftd>\n\u003Ctd>Timestamps, alignment\u003C\u002Ftd>\n\u003Ctd>Application\u003C\u002Ftd>\n\u003C\u002Ftr>\n\u003C\u002Ftbody>\n\u003C\u002Ftable>\n\u003Cp>Table is key: WebCodecs gives \u003Ccode>VideoDecoder\u003C\u002Fcode> (packets → \u003Ccode>VideoFrame\u003C\u002Fcode>) and \u003Ccode>VideoEncoder\u003C\u002Fcode> (\u003Ccode>VideoFrame\u003C\u002Fcode> → packets)—\u003Cstrong>mux, pixels, sync are yours\u003C\u002Fstrong>. Not an out-of-box transcoder—high-performance codec building blocks.\u003C\u002Fp>\n\u003Ch2>A Typical Browser Transcode Pipeline\u003C\u002Fh2>\n\u003Cp>&quot;Change resolution and re-encode&quot; roughly:\u003C\u002Fp>\n\u003Col>\n\u003Cli>\u003Cstrong>Demux\u003C\u002Fstrong>: container library extracts encoded video packets + timestamps from MP4.\u003C\u002Fli>\n\u003Cli>\u003Cstrong>Decode\u003C\u002Fstrong>: feed packets to \u003Ccode>VideoDecoder\u003C\u002Fcode> → \u003Ccode>VideoFrame\u003C\u002Fcode> raw pixels.\u003C\u002Fli>\n\u003Cli>\u003Cstrong>Process\u003C\u002Fstrong>: draw frames to Canvas\u002FWebGL for scale, crop, speed, etc.\u003C\u002Fli>\n\u003Cli>\u003Cstrong>Encode\u003C\u002Fstrong>: processed frames to \u003Ccode>VideoEncoder\u003C\u002Fcode> at target bitrate\u002Fresolution.\u003C\u002Fli>\n\u003Cli>\u003Cstrong>Remux\u003C\u002Fstrong>: write new video packets + audio back to MP4.\u003C\u002Fli>\n\u003C\u002Fol>\n\u003Cp>Pipeline stays in browser process; hardware decode\u002Fencode makes steps 2 and 4 near or above real-time—short clips often seconds; data never leaves device.\u003C\u002Fp>\n\u003Ch2>Why So Much Faster Than ffmpeg.wasm?\u003C\u002Fh2>\n\u003Cp>\u003Cstrong>Hardware vs. software.\u003C\u002Fstrong> ffmpeg.wasm runs full codec logic in WASM on CPU—limited by single-thread\u002FSIMD, struggles at high resolution. WebCodecs offloads to \u003Cstrong>dedicated codec hardware\u003C\u002Fstrong>—throughput far exceeds general CPU.\u003C\u002Fp>\n\u003Cp>&quot;C fast&quot; has a caveat: \u003Cstrong>only codecs the platform exposes\u003C\u002Fstrong>. H.264 is nearly universal; some (partial H.265, AV1 encode) may lack hardware on certain browsers\u002Fdevices—degrade or fail. Complements ffmpeg.wasm's &quot;everything slow.&quot;\u003C\u002Fp>\n\u003Ch2>Limits and Known Boundaries\u003C\u002Fh2>\n\u003Cp>WebCodecs is strong at codecs—misapplied elsewhere wastes effort:\u003C\u002Fp>\n\u003Cul>\n\u003Cli>\u003Cstrong>No muxing\u003C\u002Fstrong>: MP4\u002FMOV read\u002Fwrite needs mp4box.js etc.; timestamps and track alignment are manual.\u003C\u002Fli>\n\u003Cli>\u003Cstrong>Narrower format coverage than ffmpeg\u003C\u002Fstrong>: depends on browser + OS + hardware.\u003C\u002Fli>\n\u003Cli>\u003Cstrong>A\u002FV sync by hand\u003C\u002Fstrong>: API gives frames and timestamps—alignment and drop compensation in app.\u003C\u002Fli>\n\u003Cli>\u003Cstrong>Filters self-implemented\u003C\u002Fstrong>: crop\u002Fscale\u002Fspeed via Canvas\u002FWebGL—no ffmpeg filter graph.\u003C\u002Fli>\n\u003Cli>\u003Cstrong>Browser compatibility\u003C\u002Fstrong>: newer API—feature detect and fallback on old browsers.\u003C\u002Fli>\n\u003C\u002Ful>\n\u003Cp>Tradeoff in one line: \u003Cstrong>WebCodecs trades narrow format coverage + DIY plumbing for hardware speed and data staying local\u003C\u002Fstrong>; ffmpeg.wasm trades slow CPU for near-universal formats.\u003C\u002Fp>\n\u003Ch2>What Workloads Fit?\u003C\u002Fh2>\n\u003Cp>Judge by \u003Cstrong>mainstream format?, speed and local data matter?, logic at codec layer?\u003C\u002Fstrong>\u003C\u002Fp>\n\u003Cul>\n\u003Cli>\u003Cstrong>Fits\u003C\u002Fstrong>: mainstream (H.264 MP4\u002FMOV) transcode, compress, crop, speed change; speed-sensitive, data-local scenarios.\u003C\u002Fli>\n\u003Cli>\u003Cstrong>Marginal\u003C\u002Fstrong>: niche formats or heavy filter chains—possible but lots of glue, lower ROI.\u003C\u002Fli>\n\u003Cli>\u003Cstrong>Poor fit\u003C\u002Fstrong>: ffmpeg filter chains or codecs hardware doesn't support—server ffmpeg or ffmpeg.wasm better.\u003C\u002Fli>\n\u003C\u002Ful>\n\u003Ch2>Summary\u003C\u002Fh2>\n\u003Cp>WebCodecs exposes browser hardware codecs—avoiding server upload and slow ffmpeg.wasm soft decode. It only handles encode\u002Fdecode; mux, pixel work, A\u002FV sync are application responsibilities. Hardware speed and on-device data vs. platform-limited formats and DIY stack. Mainstream transcode\u002Fcompress\u002Fedit where speed and privacy matter is its home; niche formats and heavy filter chains remain ffmpeg territory.\u003C\u002Fp>\n",{"left":4,"top":4,"width":5,"height":5,"rotate":4,"vFlip":6,"hFlip":6,"body":47},"\u003Cg fill=\"none\" stroke=\"currentColor\" stroke-linecap=\"round\" stroke-linejoin=\"round\" stroke-width=\"2\">\u003Cpath d=\"M12 20v2m0-20v2m5 16v2m0-20v2M2 12h2m-2 5h2M2 7h2m16 5h2m-2 5h2M20 7h2M7 20v2M7 2v2\"\u002F>\u003Crect width=\"16\" height=\"16\" x=\"4\" y=\"4\" rx=\"2\"\u002F>\u003Crect width=\"8\" height=\"8\" x=\"8\" y=\"8\" rx=\"1\"\u002F>\u003C\u002Fg>",{"left":4,"top":4,"width":5,"height":5,"rotate":4,"vFlip":6,"hFlip":6,"body":49},"\u003Cpath fill=\"none\" stroke=\"currentColor\" stroke-linecap=\"round\" stroke-linejoin=\"round\" stroke-width=\"2\" d=\"m12.296 3.464l3.02 3.956M20.2 6L3 11l-.9-2.4c-.3-1.1.3-2.2 1.3-2.5l13.5-4c1.1-.3 2.2.3 2.5 1.3zM3 11h18v8a2 2 0 0 1-2 2H5a2 2 0 0 1-2-2zm3.18-5.724l3.1 3.899\"\u002F>",{"left":4,"top":4,"width":5,"height":5,"rotate":4,"vFlip":6,"hFlip":6,"body":51},"\u003Cpath fill=\"none\" stroke=\"currentColor\" stroke-linecap=\"round\" stroke-linejoin=\"round\" stroke-width=\"2\" d=\"m16 18l6-6l-6-6M8 6l-6 6l6 6\"\u002F>",{"left":4,"top":4,"width":5,"height":5,"rotate":4,"vFlip":6,"hFlip":6,"body":53},"\u003Cg fill=\"none\" stroke=\"currentColor\" stroke-linecap=\"round\" stroke-linejoin=\"round\" stroke-width=\"2\">\u003Cpath d=\"m16 13l5.223 3.482a.5.5 0 0 0 .777-.416V7.87a.5.5 0 0 0-.752-.432L16 10.5\"\u002F>\u003Crect width=\"14\" height=\"12\" x=\"2\" y=\"6\" rx=\"2\"\u002F>\u003C\u002Fg>",{"left":4,"top":4,"width":5,"height":5,"rotate":4,"vFlip":6,"hFlip":6,"body":55},"\u003Cpath fill=\"none\" stroke=\"currentColor\" stroke-linecap=\"round\" stroke-linejoin=\"round\" stroke-width=\"2\" d=\"m16 3l4 4l-4 4m4-4H4m4 14l-4-4l4-4m-4 4h16\"\u002F>",1782539673403]