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Guide de conversion de puissance de dBm en mW (avec calculateur en temps réel)

In radio frequency (RF) engineering, network communications (like Wi-Fi and IoT setups), and audio engineering, dealing with signal power levels is a daily task. When reading device spec sheets or testing systems, you’ll constantly run into two different units of power: dBm et mW.

To make your workflow faster and help you avoid tedious manual math, we built a two-way, real-time conversion calculator.

Real-Time Power Calculator

Whether you need to convert absolute power into a logarithmic scale or vice versa, simply enter a value below to get an instant result.

dBm ↔ mW Calculator

What are dBm and mW?

Before diving into the math, let’s quickly review what these units represent:

  • mW (Milliwatt): This is an absolute unit of power, representing one-thousandth of a watt (0.001 W). It operates on a linear scale, meaning 20 mW is exactly twice as powerful as 10 mW.
  • dBm (Decibel-milliwatt): This is a logarithmic unit of power referenced to 1 mW. Because RF signal power spans a massive range—from incredibly weak received signals to highly powerful transmissions—a logarithmic scale compresses long strings of zeros into manageable two- or three-digit numbers.

A handy rule of thumb to remember:

  • 0 dBm always equals 1 mW.
  • Every 3 dBm increase roughly doubles the power in mW.
  • Every 10 dBm increase multiplies the power in mW by 10.

The Math Behind the Conversion

If you are writing code or want to calculate this manually on a scientific calculator, here are the core formulas.

Converting dBm to mW:

To convert decibel-milliwatts to milliwatts, use the following equation:

P(mW) = 10 P(dBm) 10

Converting mW to dBm:

To convert milliwatts to decibel-milliwatts, we use a base-10 logarithm:

P(dBm) = 10 · log10(P(mW))

Why Do We Need Both Units?

Different scenarios call for different units in real-world applications:

  • Transmission (Tx) Power: Router or radio transmitter spec sheets often use mW to indicate maximum output power (e.g., 100 mW or 500 mW).
  • Receive (Rx) Sensitivity: The minimum signal a receiver can detect is usually incredibly weak, making dBm much more practical to read (e.g., -90 dBm).
  • Link Budget Calculations: When calculating antenna gain, cable loss, and free space path loss, it is much easier to add and subtract logarithmic values (dB and dBm) than to multiply and divide massive linear values (mW).

Foire aux questions (FAQ)

Q: Can mW be negative?

No. Since a milliwatt is an absolute measure of physical power, it cannot drop below zero. However, dBm can be negative. A negative dBm value simply means the power is less than 1 mW (for example, -10 dBm equals 0.1 mW).

Q : Quelle est la différence entre le dB et le dBm ?

dBm is an absolute measurement of power referenced to exactly 1 milliwatt. dB (Decibel) is a relative measurement used to express the ratio or difference between two values (like signal gain from an antenna, or loss from a cable). You use dBm to state how much power exists, and dB to state how much it changed.

Q: Is 30 dBm a lot of power?

Dans le cadre d'un réseau sans fil standard, oui. 30 dBm correspondent à 1 000 mW (soit exactement 1 watt). Il s'agit de la puissance d'émission maximale autorisée par la loi pour de nombreux routeurs et points d'accès Wi-Fi dans diverses régions.

Q: Why do my phone’s Wi-Fi or cellular signals show as negative numbers?

Signal strength is measured at the receiver (your phone). By the time an RF signal travels from the cell tower or router, through the air, and through walls, it loses a massive amount of energy. The received power is a microscopic fraction of a milliwatt, which translates to a negative dBm value (typically between -40 dBm and -100 dBm).

Hopefully, this tool saves you time in your daily RF calculations. If you have any questions about link budgets, or if you want us to add more tools (like a VSWR calculator), let us know in the comments below!

Eric Yang

Eric Yang — Ingénieur senior en assistance technique

Chez FirstFiber Technologies, Éric est spécialisé dans les tests de réseaux PON, les diagnostics OTDR et les solutions de surveillance des fibres optiques.
✉️ E-mail : tech@firstfibertech.com

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