Digital evidence · Digital twins · Access silicon
Proof, all the way down.
Most systems ask you to trust them. Ours are built so you don’t have to. Every claim we make about a piece of evidence, a model, or a chip can be recomputed by someone who has no reason to believe us.
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SEALED
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VERIFIED
Fig. 01 — custody chain, illustrative
The through-line
One idea, four disciplines.
Digital forensics, ledgers, twins and silicon look like four different companies’ worth of work. They are one argument, carried through four layers: a fact is only useful if a stranger can check it.
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01 · Prove
Establish the fact
Acquire from disk, memory, mobile, mail and network. Every artefact is hashed four ways at intake and worked on only as a derived copy whose digest provably matches the master.
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02 · Preserve
Make it unfalsifiable
Each custody event joins an append-only hash chain, batched into a Merkle tree and anchored to a permissioned ledger. Alteration is not prevented — it is made visible.
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03 · See
Render it in space and time
Scenes, networks and assets reconstructed as navigable twins — where each element still carries the provenance of the record it was built from. Visualisation that cannot quietly invent.
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04 · Trust
Anchor it in hardware
Software integrity ends where the boot chain begins. Our access silicon carries a verified boot path, signed firmware with anti-rollback, and tamper-evident logging in the die itself.
Trust is not a claim. It is a computation somebody else can repeat.
What we build
Four product lines, one verification substrate.
Each stands on its own. Together they cover the whole distance from a byte arriving at a workstation to the transistor that carried it.
Digital forensics platform
A full investigation environment — disk image, memory, e-mail, media and network analysis, case management, review and approval, and court-package assembly — with the integrity ledger under all of it.
Blockchain evidence integrity
Chain of custody as a cryptographic object rather than a signature sheet. Append-only hash chain, Merkle-batched anchoring, per-record inclusion proofs, and a public verifier that needs no account.
Digital twins & immersive analysis
Reconstruct a scene, a facility or a network as a navigable model — timeline-scrubbable, measurable, and provenance-bound, so every element traces back to the source record it was derived from.
Telecom access silicon
An indigenous passive optical network access SoC family for fibre-to-the-home terminals — PON MAC and management IP, a trust subsystem built for Indian security assurance, and 1G and 10G terminal SoCs on 40 nm CMOS.
The substrate
Integrity is a pipeline, not a badge.
Five operations stand between a file arriving and an exhibit that survives cross-examination. Each leaves a cryptographic record the next one chains over — so the question “has this changed since you took it?” has an arithmetic answer rather than a procedural one.
- Ingest. The device-computed digest is compared against one the server recomputes independently. Divergence is flagged into the custody trail, never quietly accepted.
- Seal. Four digests at intake; the original is sealed and examiners work only on derived copies.
- Encrypt. Per-file AES-256-GCM under a wrapped data key, written to two independent backends.
- Anchor. Custody events join an append-only chain, Merkle-batched with per-record inclusion proofs.
- Verify. Stored bytes are pulled back and re-hashed from scratch, on demand and continuously.
Fig. 02 — custody pipeline
Down at the bottom of the stack
The last place trust can be assumed away.
India is running the largest fibre build-out in its history on entirely imported access silicon, from a supply base that is narrowing rather than widening. Our access SoC family exists to close that gap — and to put a verified boot chain under the network the rest of this work depends on.
XRV-PONMAC1
PON MAC & OMCI core
GPON and XGS-PON media access control, ranging, dynamic bandwidth allocation, PON-layer encryption and an ONU management engine. Licensable as IP.
XRV-TRUST2
Trust subsystem
Verified secure boot from an immutable root, signed firmware update with anti-rollback, protected credential storage and tamper-evident logging.
XRV-ONT100
GPON terminal SoC
40 nm CMOS optical network terminal SoC with an indigenous RISC-V applications processor, integrated Ethernet switch and DDR interface.
XRV-ONT200
XGS-PON 10G variant
Symmetric 10 Gbit/s terminal SoC reusing the proven platform, adding a 10G-class SerDes and burst-mode optical interface.
Built against published specifications
Standards, implemented.
Listed because the work is written against them — not because a slide says so.
Bring us something you need to be able to prove.
Investigation workflows, evidence integrity architecture, twin reconstruction, or access silicon integration — we will tell you plainly what we can and cannot do.