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I need a clean, well-documented workflow that takes my raw text data, runs полноценный анализ тональности, and delivers results that can be displayed directly on a website. Here is what matters most to me: • The sentiment model must reliably label positive, negative and neutral tones (more granular scales are welcome if it improves insight). • The output should arrive in two forms: a machine-readable file (CSV or JSON) and an embeddable visual component such as a lightweight dashboard or set of charts that I can drop into a standard HTML page. • Please keep the solution self-contained—Python (pandas, scikit-learn / spaCy / NLTK) or another open-source stack is fine as long as I can rerun it locally. Acceptance criteria 1. Script/notebook that ingests my data and produces sentiment labels. 2. Reusable visualization (e.g., Plotly, [login to view URL], D3) styled to match a modern website. 3. Brief README explaining setup, model choices and how to update the visuals with new data. If you have a preferred NLP library or an idea for a slick front-end integration, let me know in your proposal.
Project ID: 40594703
143 proposals
Remote project
Active 57 yrs ago
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