← Back

Silabs

silabs

96 CVEs • 61 products

Products (61)

Click to collapse
Toggle
Emberznet
emberznet
Gecko Os
gecko_os
Uzb 7
uzb-7
Iwrap
iwrap
Micrium Os
micrium_os
Uc/tcp Ip
uc/tcp-ip
Openthread Sdk
openthread_sdk
Emberznet Sdk
emberznet_sdk
Z Wave S0
z-wave_s0
Z Wave S2
z-wave_s2
Wt32i A
wt32i-a
Zgm130s037hgn
zgm130s037hgn
Zm5202
zm5202
Zm5101
zm5101
Zgm2305a27hgn
zgm2305a27hgn
Zgm230sb27hgn
zgm230sb27hgn
Sd3503
sd3503
Sd3502
sd3502
Zm5304
zm5304
Zgm230sa27hgn
zgm230sa27hgn

CVEs (96)

CVE
VENDORS
PRODUCTS
UPDATED
PUBLISHED
CVSS
1Silabs
1Gecko Bootloader
Jun 17, 2026
Nov 2, 2022
N/A· v4
9.1 CRITICAL· v3
N/A· v2
Out-of-Bounds error in GBL parser in Silicon Labs Gecko Bootloader version 4.0.1 and earlier allows attacker to overwrite flash Sign key and OTA decryption key via malicious bootloader upgrade.
1Silabs
5Sd3502 Firmware
Sd3503 FirmwareZm5101 Firmware+2 more
Jul 9, 2026
May 17, 2022
N/A· v4
6.5 MEDIUM· v3
6.1 MEDIUM· v2
Denial of Service (DoS) in the Z-Wave S0 NonceGet protocol specification in Silicon Labs Z-Wave 500 series allows local attackers to block S0/S2 protected Z-Wave network via crafted S0 NonceGet Z-Wave packages, utilizing...Show more
Denial of Service (DoS) in the Z-Wave S0 NonceGet protocol specification in Silicon Labs Z-Wave 500 series allows local attackers to block S0/S2 protected Z-Wave network via crafted S0 NonceGet Z-Wave packages, utilizing included but absent NodeIDs.Show less
1Silabs
1Micrium Os
Jun 17, 2026
May 3, 2022
N/A· v4
6.5 MEDIUM· v3
6.4 MEDIUM· v2
Micrium OS Versions 5.10.1 and prior are vulnerable to integer wrap-around in functions Mem_DynPoolCreate, Mem_DynPoolCreateHW and Mem_PoolCreate. This unverified memory assignment can lead to arbitrary memory allocation...Show more
Micrium OS Versions 5.10.1 and prior are vulnerable to integer wrap-around in functions Mem_DynPoolCreate, Mem_DynPoolCreateHW and Mem_PoolCreate. This unverified memory assignment can lead to arbitrary memory allocation, resulting in unexpected behavior such as very small blocks of memory being allocated instead of very large ones.Show less
1Silabs
5Zgm130s037hgn Firmware
Zgm2305a27hgn FirmwareZgm230sb27hgn Firmware+2 more
Nov 21, 2024
Feb 4, 2022
N/A· v4
8.1 HIGH· v3
4.8 MEDIUM· v2
The Z-Wave specification requires that S2 security can be downgraded to S0 or other less secure protocols, allowing an attacker within radio range during pairing to downgrade and then exploit a different vulnerability (C...Show more
The Z-Wave specification requires that S2 security can be downgraded to S0 or other less secure protocols, allowing an attacker within radio range during pairing to downgrade and then exploit a different vulnerability (CVE-2013-20003) to intercept and spoof traffic.Show less
1Silabs
5Zgm130s037hgn Firmware
Zgm2305a27hgn FirmwareZgm230sb27hgn Firmware+2 more
Nov 21, 2024
Feb 4, 2022
N/A· v4
8.3 HIGH· v3
7.9 HIGH· v2
Z-Wave devices from Sierra Designs (circa 2013) and Silicon Labs (using S0 security) may use a known, shared network key of all zeros, allowing an attacker within radio range to spoof Z-Wave traffic.
4Aeotec
SamsungSilabs+1 more
6500 Series Firmware
700 Series FirmwareSth Eth 200+3 more
Jun 17, 2026
Jan 10, 2022
N/A· v4
6.5 MEDIUM· v3
3.3 LOW· v2
Z-Wave devices using Silicon Labs 500 and 700 series chipsets, including but not likely limited to the SiLabs UZB-7 version 7.00, ZooZ ZST10 version 6.04, Aeon Labs ZW090-A version 3.95, and Samsung STH-ETH-200 version 6...Show more
Z-Wave devices using Silicon Labs 500 and 700 series chipsets, including but not likely limited to the SiLabs UZB-7 version 7.00, ZooZ ZST10 version 6.04, Aeon Labs ZW090-A version 3.95, and Samsung STH-ETH-200 version 6.04, are susceptible to denial of service via malformed routing messages.Show less
4Aeotec
FibaroSilabs+1 more
6500 Series Firmware
Fgwpb 111Zen20+3 more
Jun 17, 2026
Jan 10, 2022
N/A· v4
6.5 MEDIUM· v3
6.1 MEDIUM· v2
Z-Wave devices based on Silicon Labs 500 series chipsets using S2, including but likely not limited to the ZooZ ZST10 version 6.04, ZooZ ZEN20 version 5.03, ZooZ ZEN25 version 5.03, Aeon Labs ZW090-A version 3.95, and Fi...Show more
Z-Wave devices based on Silicon Labs 500 series chipsets using S2, including but likely not limited to the ZooZ ZST10 version 6.04, ZooZ ZEN20 version 5.03, ZooZ ZEN25 version 5.03, Aeon Labs ZW090-A version 3.95, and Fibaro FGWPB-111 version 4.3, are susceptible to denial of service and resource exhaustion via malformed SECURITY NONCE GET, SECURITY NONCE GET 2, NO OPERATION, or NIF REQUEST messages.Show less
2Schlage
Silabs
2500 Series Firmware
Be468
Jun 17, 2026
Jan 10, 2022
N/A· v4
6.5 MEDIUM· v3
6.1 MEDIUM· v2
Z-Wave devices based on Silicon Labs 500 series chipsets using S0 authentication are susceptible to uncontrolled resource consumption leading to battery exhaustion. As an example, the Schlage BE468 version 3.42 door lock...Show more
Z-Wave devices based on Silicon Labs 500 series chipsets using S0 authentication are susceptible to uncontrolled resource consumption leading to battery exhaustion. As an example, the Schlage BE468 version 3.42 door lock is vulnerable and fails open at a low battery level.Show less
4Dome
JascoLinear+1 more
4500 Series Firmware
Dm501Lb60z 1+1 more
Jun 17, 2026
Jan 10, 2022
N/A· v4
8.1 HIGH· v3
4.8 MEDIUM· v2
Z-Wave devices based on Silicon Labs 500 series chipsets using CRC-16 encapsulation, including but likely not limited to the Linear LB60Z-1 version 3.5, Dome DM501 version 4.26, and Jasco ZW4201 version 4.05, do not impl...Show more
Z-Wave devices based on Silicon Labs 500 series chipsets using CRC-16 encapsulation, including but likely not limited to the Linear LB60Z-1 version 3.5, Dome DM501 version 4.26, and Jasco ZW4201 version 4.05, do not implement encryption or replay protection.Show less
2Linear
Silabs
5100 Series Firmware
200 Series Firmware300 Series Firmware+2 more
Jun 17, 2026
Jan 10, 2022
N/A· v4
8.8 HIGH· v3
8.3 HIGH· v2
Z-Wave devices based on Silicon Labs 100, 200, and 300 series chipsets do not support encryption, allowing an attacker within radio range to take control of or cause a denial of service to a vulnerable device. An attacke...Show more
Z-Wave devices based on Silicon Labs 100, 200, and 300 series chipsets do not support encryption, allowing an attacker within radio range to take control of or cause a denial of service to a vulnerable device. An attacker can also capture and replay Z-Wave traffic. Firmware upgrades cannot directly address this vulnerability as it is an issue with the Z-Wave specification for these legacy chipsets. One way to protect against this vulnerability is to use 500 or 700 series chipsets that support Security 2 (S2) encryption. As examples, the Linear WADWAZ-1 version 3.43 and WAPIRZ-1 version 3.43 (with 300 series chipsets) are vulnerable.Show less
1Silabs
2700 Series Firmware
Uzb 7
Jun 17, 2026
Jan 10, 2022
N/A· v4
6.5 MEDIUM· v3
3.3 LOW· v2
Z-Wave devices based on Silicon Labs 700 series chipsets using S2 do not adequately authenticate or encrypt FIND_NODE_IN_RANGE frames, allowing a remote, unauthenticated attacker to inject a FIND_NODE_IN_RANGE frame with...Show more
Z-Wave devices based on Silicon Labs 700 series chipsets using S2 do not adequately authenticate or encrypt FIND_NODE_IN_RANGE frames, allowing a remote, unauthenticated attacker to inject a FIND_NODE_IN_RANGE frame with an invalid random payload, denying service by blocking the processing of upcoming events.Show less
1Silabs
1Iwrap
Jun 17, 2026
Sep 7, 2021
N/A· v4
6.5 MEDIUM· v3
3.3 LOW· v2
The Bluetooth Classic implementation in Silicon Labs iWRAP 6.3.0 and earlier does not properly handle the reception of an oversized LMP packet greater than 17 bytes, allowing attackers in radio range to trigger a crash i...Show more
The Bluetooth Classic implementation in Silicon Labs iWRAP 6.3.0 and earlier does not properly handle the reception of an oversized LMP packet greater than 17 bytes, allowing attackers in radio range to trigger a crash in WT32i via a crafted LMP packet.Show less
1Silabs
1Micrium Uc Http
Jun 17, 2026
Jan 26, 2021
N/A· v4
7.5 HIGH· v3
5.0 MEDIUM· v2
A denial-of-service vulnerability exists in the HTTP Server functionality of Micrium uC-HTTP 3.01.00. A specially crafted HTTP request can lead to denial of service. An attacker can send an HTTP request to trigger this v...Show more
A denial-of-service vulnerability exists in the HTTP Server functionality of Micrium uC-HTTP 3.01.00. A specially crafted HTTP request can lead to denial of service. An attacker can send an HTTP request to trigger this vulnerability.Show less
1Silabs
1Bluetooth Low Energy Software Development Kit
Jun 17, 2026
Aug 20, 2020
N/A· v4
6.5 MEDIUM· v3
3.3 LOW· v2
Silicon Labs Bluetooth Low Energy SDK before 2.13.3 has a buffer overflow via packet data. This is an over-the-air denial of service vulnerability in Bluetooth LE in EFR32 SoCs and associated modules running Bluetooth SD...Show more
Silicon Labs Bluetooth Low Energy SDK before 2.13.3 has a buffer overflow via packet data. This is an over-the-air denial of service vulnerability in Bluetooth LE in EFR32 SoCs and associated modules running Bluetooth SDK, supporting Central or Observer roles.Show less
1Silabs
1Bluetooth Low Energy Software Development Kit
Jun 17, 2026
Aug 20, 2020
N/A· v4
8.8 HIGH· v3
5.8 MEDIUM· v2
Silicon Labs Bluetooth Low Energy SDK before 2.13.3 has a buffer overflow via packet data. This is an over-the-air remote code execution vulnerability in Bluetooth LE in EFR32 SoCs and associated modules running Bluetoot...Show more
Silicon Labs Bluetooth Low Energy SDK before 2.13.3 has a buffer overflow via packet data. This is an over-the-air remote code execution vulnerability in Bluetooth LE in EFR32 SoCs and associated modules running Bluetooth SDK, supporting Central or Observer roles.Show less
1Silabs
2Z Wave S0 Firmware
Z Wave S2 Firmware
Nov 21, 2024
Dec 9, 2018
N/A· v4
6.5 MEDIUM· v3
6.1 MEDIUM· v2
An issue was discovered on Sigma Design Z-Wave S0 through S2 devices. An attacker first prepares a Z-Wave frame-transmission program (e.g., Z-Wave PC Controller, OpenZWave, CC1110, etc.). Next, the attacker conducts a Do...Show more
An issue was discovered on Sigma Design Z-Wave S0 through S2 devices. An attacker first prepares a Z-Wave frame-transmission program (e.g., Z-Wave PC Controller, OpenZWave, CC1110, etc.). Next, the attacker conducts a DoS attack against the Z-Wave S0 Security version product by continuously sending divided "Nonce Get (0x98 0x81)" frames. The reason for dividing the "Nonce Get" frame is that, in security version S0, when a node receives a "Nonce Get" frame, the node produces a random new nonce and sends it to the Src node of the received "Nonce Get" frame. After the nonce value is generated and transmitted, the node transitions to wait mode. At this time, when "Nonce Get" is received again, the node discards the previous nonce value and generates a random nonce again. Therefore, because the frame is encrypted with previous nonce value, the received normal frame cannot be decrypted.Show less