CodingBox Documentation

Link budget engineering

A link budget is the one calculation every fibre link is designed by and every failing link is judged against: does the light that leaves the transmitter, minus everything the plant takes, still exceed what the receiver needs — with room to spare for ageing, repairs and a dirty connector? This page gives the equation and its terms, the standard allowances for each loss, the penalties that are not losses but behave like them, a margin policy, four worked examples, and the opposite problem: too much light.

The equation

Power budget      = Tx power (min)  −  Rx sensitivity (worst)                        [dB]
Plant loss        = fibre (km × dB/km) + connector pairs + splices + passive devices   [dB]
Penalties         = dispersion + reflections + crosstalk + modal noise (spec-defined)  [dB]
Ageing / repair   = 1–3 dB reserved                                                   [dB]
Margin remaining  = Power budget − Plant loss − Penalties − Ageing  (target ≥ 3 dB)

Where the numbers come from:

TermSourceTypical (10GBASE-LR)
Tx power minmodule datasheet / IEEE clause (average power, min)−8.2 dBm
Rx sensitivity worstdatasheet at the specified BER (1e-12; pre-FEC for 25G+)−14.4 dBm
Power budgetdifference6.2 dB
Fibrelength × attenuation coefficient (design max)10 km × 0.35 = 3.5 dB (Attenuation)
Connectorscount of mated pairs × allowance4 × 0.5 = 2.0 dB (design)
Splicescount × allowance4 × 0.1 = 0.4 dB
PenaltiesIEEE budget already includes them for the standard reach; add for non-standard links0.5–1.5 dB
Ageinglaser output falls 1–2 dB over life; add for repairs1 dB

Allowances by standard

Body / documentConnector pairSpliceFibre (SMF 1310 / 1550)Fibre (MMF 850)
TIA-568.3-D0.75 dB0.3 dB0.5 / 0.5 dB/km (indoor), 0.4 outdoor3.5 dB/km
ISO/IEC 14763-30.75 (grade C) / 0.25 (grade B)0.30.4 / 0.4 (OS2)3.5
ITU-T G.652.D cable spec0.35–0.4 / 0.21–0.3
IEEE 802.3 link model2 pairs included (≈ 1.5 dB MMF, 2 × 0.5 SMF)worst-case per clauseper clause
Practical design0.50.10.35 / 0.223.0

Use the stricter of the customer's standard and the practical numbers; document which.

Penalties that are not losses

PenaltyCauseSizeWhen it matters
Dispersion (TDP)pulse spreading closes the eye1–3 dBlong SMF at 10G+, MMF near its reach (Dispersion)
Reflections / return losslight bounced back into a DFB laser destabilises it; multiple reflections interfere0.5–1 dBUPC connectors on long links; APC for PON and DWDM
Modal noisespeckle pattern changes at MMF connectors0.5–1 dBmulti-mode with lasers, offset connectors
Extinction ratiolow ER = less "1" power for the same average0.5–2 dBcheap DMLs
Crosstalkadjacent WDM channels0.5–1 dBCWDM/DWDM muxes
PolarizationPDL/PMD< 0.5 dBlong coherent links

IEEE PMD budgets already contain the penalties for the standard reach on standard fibre; add your own only for non-standard combinations.

Margin policy

Margin leftVerdict
≥ 3 dBdesign pass
1–3 dBpass with conditions: clean connectors verified, no future splitters, monitoring alerts on
0–1 dBworks on day one, fails on the first dirty connector or hot day — redesign (better fibre, fewer connectors, longer-reach module)
< 0does not link; choose an ER module, add an amplifier or shorten the path

Worked examples

1. 10GBASE-LR over 10 km SMF, 4 connector pairs, 4 splices

ItemdB
Budget (−8.2 − (−14.4))6.2
Fibre 10 × 0.35−3.5
Connectors 4 × 0.5−2.0
Splices 4 × 0.1−0.4
Margin0.3 — marginal by design allowances; with typical connectors (4 × 0.2) margin is 1.5 dB. Verdict: verify measured plant loss ≤ 3.5 dB or use 10GBASE-ER with an attenuator

2. 10GBASE-ER over 35 km SMF at 1550 nm, 6 pairs, 20 splices

ItemdB
Budget (−4.7 − (−15.8))11.1 (IEEE ER: −4.7 min Tx, −15.8 sensitivity, budget 15 with 40 km at 0.25 and penalties)
Fibre 35 × 0.22−7.7
Connectors 6 × 0.5−3.0
Splices 20 × 0.1−2.0
Margin−1.6 by allowances → with measured plant (connectors 0.2, splices 0.05) loss is 9.9 → margin 1.2 dB. Verdict: measure before committing, or use ZR (budget ~23 dB) with a 5 dB attenuator

3. 100GBASE-SR4 over 90 m OM4, 2 MPO pairs

ItemdB
Budget (−8.4 OMA min Tx − (−10.3) sensitivity OMA)1.9 (IEEE channel insertion loss allowance 1.9 dB for 100 m incl. 1.5 dB connectors)
Fibre 0.09 × 3.0−0.27
MPO 2 × 0.5−1.0
Margin0.6 — within IEEE model; the real limit is modal bandwidth, not power (Reach tables)

4. GPON class B+ over 18 km, 1:32 split, 5 pairs, 8 splices

ItemdB
Class B+ budget (min 13, max 28 dB)28
Fibre 18 × 0.35 (1310 upstream is worst)−6.3
Splitter 1:32−17.5
Connectors 5 × 0.5−2.5
Splices 8 × 0.1−0.8
Margin0.9 — tight; class C+ (32 dB) or 1:16 split recommended (ODN classes & budget)

Too much light: overload and attenuators

Receivers have a maximum input (overload, −1 … +3 dBm for PIN, lower for APD). A 40 km ER module on a 2 km link delivers −5 dBm to a receiver rated to +1 — fine; a ZR module with +4 dBm Tx on a patch cord delivers +3.5 dBm to an APD rated to −7 — errors or damage.

SituationFix
Long-reach module on a short linkfixed attenuator 5–15 dB at the receiver end, chosen so Rx sits mid-window
DWDM/EDFA output into a moduleVOA set during commissioning
PON ONU close to the OLTclass-dependent; usually within range because of the splitter
Both directionsattenuate each direction separately; attenuators are per fibre

Both ends must be checked: budgets are per direction and the two ends' modules may differ (Rx power & budget).

From design to acceptance

  1. Design with allowances → margin ≥ 3 dB.
  2. Install; measure insertion loss with LSPM at the working wavelengths (Testing).
  3. Compare measured loss with design loss; investigate any connector > 0.5 dB.
  4. Light the link; record Tx and Rx DDM at both ends — the link passport (Monitoring).
  5. Margin = Rx power − sensitivity; alert if it drops by 2 dB from the passport.

In CodingBox

Step 4 starts on the bench: read each module's Tx power and thresholds before install, and after install read the Rx values on the switch — the pair of numbers is the measured budget. CodingBox stores the module's values with its serial so the passport survives module swaps (DDM in the app, Code database).

The numbers on one page — attenuation, allowances, reflectance, geometry, dispersion, budgets of common interfaces: Typical values; the formulas with worked examples: Formulas & calculations; the module side of the budget — launch power, sensitivity, overload, FEC: Transceivers in the link; when the budget runs out — amplifiers, OSNR and regeneration: Amplifiers & regeneration.