feat/motion-gtm-os
3 Commits
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18d5f5bfc0 |
Make Piggy part of the product rather than a guest in it
Piggy arrived as a chat panel bolted onto a CRM and then grew a workspace around it. The layout was already right — the audit found the approval card to be the best-designed object in the repo, and the account page's empty panels less finished than anything in the workspace. What was wrong was vocabulary: nobody had written the small things down, so both halves kept inventing them. Piggy was drawn with five different marks — a pig in the dock, a sparkle in the sidebar and again on the model picker, a speech bubble on the Ask buttons, and a stock robot glyph on every assistant message, which is the one people look at most. There is now one mark. The composer, which is the first control in the product since sign-in lands on /piggy, was the only un-adapted shadcn field left: 6px radius against a 12px Send button it sat 8px from. A stat tile had been reinvented six times at three numeral scales, and the same uppercase micro-label existed in five variants, two of them one tab apart in the same rail. There were 63 hand-written font sizes: not a scale, sixty-three opinions. Underneath that, the focus ring was invisible. The global rule used ring-accent, which Tailwind deliberately aliases onto the hover tint, so the ring measured 1.01:1 against the light canvas — no visible focus indicator anywhere in the product, for any accent, in either theme. It is ring-brand now and measures 17:1. The warning, positive and info tones were darkened until each clears 4.5:1 on a card, on inset and on its own chip, and the light canvas moved to 98% so a card lifts without leaning on its shadow. The mobile work is the part worth reading. A landscape phone gave the transcript 28% of the viewport and a keyboard-up phone 16%, against a 45% floor — and the fixed tab bar painted over the composer, covering the safety sentence and half the Send button, because two source comments asserted the bar stood down on short viewports and it never had. Both fixed and measured by hit-testing rather than by screenshot. The composer itself was 64px tall for a blank second line nobody typed, because the auto-resize effect sizes to scrollHeight and scrollHeight counts rows — a CSS height could not win against an inline style, so the attribute was the honest lever. Verified across both themes driven through the app's own control: no horizontal overflow on 15 routes at four viewports, 672 stat values that fit, 297 labels at exactly 11px/500, Escape returning focus to its opener rather than the body on every overlay, and a rejected write no longer reporting "Succeeded" with a green check. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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f0173440e4 |
Put Piggy on Prime Agent, and let it write to the book
Piggy was a hand-rolled OpenAI tool loop. It is now a Prime Agent session — Prime Intellect's own harness, embedded as a Node library — answering from PIG's tools and, for the first time, able to put information into the CRM rather than only read it out. The harness is a coding agent, so the first job was taking the coding agent away from it. `noTools: 'all'` plus an explicit allowlist leaves the model with PIG's ten `pig_*` tools and no bash, no filesystem, no IPython. That holds under attack: a hostile extension, a skill and a settings file planted in the agent's own directory, then `setActiveToolsByName` called with every built-in, still leaves ten tools, all ours. Both lines are load-bearing — `noTools` alone registers nothing, and the allowlist is what admits our own. Writing is gated rather than assumed. A change is proposed, not made: the tool returns a description, the transcript renders a diff card, and nothing reaches the database until someone presses Apply. Contracts, commitments, allocations and compliance always stop for a human whatever the mode. Every write runs through `executeMutation` as the calling user, so their capabilities and the audit trail apply exactly as they would to a human's. Four things about the SDK are wrong in its own documentation and cost a debugging cycle each: models.json does not resolve an env var name for `apiKey`, it sends the literal string; there is no built-in prime-inference provider in 0.84.1; a ResourceLoader you pass in is never reloaded for you; and the stock system prompt is a coding-assistant prompt that must be replaced — but replacing it also silently removes the tool list, because the harness only renders that section when it owns the prompt. AGENTS.md records all four. The expensive one was thinking level. The harness defaults to `medium`, and nemotron spent an entire 4,096-token budget reasoning and returned an empty answer. `low` was worse; `off` omits the parameter so the endpoint's default wins. An explicit `reasoning_effort: none` via `thinkingLevelMap` took a turn from 6,195 output tokens to 149. And a turn is now bounded. The harness loop is `while (true)` with no iteration cap; a runaway on a frontier model would have eaten the credit it is supposed to report on. Ceilings on model calls and tokens, enforced both through the harness hook and independently from the event stream, plus a per-user daily spend limit — and the ledger now records spend on turns that fail, which it previously discarded. Signing in lands on /piggy, which is a workspace: conversations down one side, the agent in the middle, what it did and what it cost beside it. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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99d165b5e5 |
Rebuild Piggy's interface, and give the demo book a business to describe
Piggy answered in raw markdown, threw away every tool result it streamed, and fought the reader's scroll on every token. The three surfaces that made it worth having — what it read, how it reasoned, what it cost — were all on the wire and none of them reached the screen. The transcript is now composed of five parts under components/piggy: answers render through streamdown, the container sticks to the bottom without pinning the reader there, tool steps say what they read and link to the record, and each turn carries its model and token count. Three lifecycle bugs went with them: Stop left a permanent spinner, a truncated stream was indistinguishable from thinking, and a failed send destroyed the message it failed to send. Underneath, the inference path grew timeouts, jittered retries on 429 and 5xx, tolerance of the malformed frames a 30B model emits, and an agent_runs row per turn so chat spend is observable. The system prompt now states that a field ending in Cents is cents — without it nemotron renders costPerGpuHourCents: 189 as "$189 per GPU-hour", which is a 100x error on the most scrutinised number in the room. The demo book was arithmetically incoherent: every deal's value contradicted its own allocation revenue by up to 3.6x, nothing had ever closed, no customer had any paper, and the marketplace was empty. Deal value is now derived from the allocation, the book clears 5.3% across five blocks with one deliberately underwater, and the renewal, compliance and agent-provenance machinery finally has rows to act on. A --clear that deleted every obligation, SLA term and capacity request in the database regardless of origin is scoped to the demo's own ids. Around that: accounts have a detail page, ⌘K searches the book, Settings can mint the API keys it always claimed to, and deploy.sh actually ships the agent instead of silently skipping its compose profile. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |