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This tool can perform both IPv4 address lookups and IPv6 address lookups. You can also process a batch report by uploading a CSV file through our user dashboard. Just as we use an email address or phone number to identify a person, an IP address is linked to an individual user and can be associated with their online activity. A reputation can also be established with each IP address to make it easy to identify high risk users.
It can be difficult for users to frequently switch an assigned IP address from their ISP, which is why internet users often use proxies, VPNs, or Tor to mask their identity. Proxies are used to mask the identity of a user by processing the internet connection through another server. A proxy connection is made via a proxy server, which serves as a hub through which internet requests are processed between websites and the end user.
Websites receiving these requests would only see the proxy server's IP address and not the user's real IP address. Therefore, a user in another country could mask their true location details to bypass geo restrictions and remain anonymous. Abusive users also utilize proxies to engage in fraudulent activity such as creating duplicate accounts, posting SPAM, or generating fraudulent transactions from different proxy IP addresses without revealing their true identity. Many users are surprised by how much data they can gain by performing an IP Address lookup.
Location information may be one of the most useful data points, and is usually accurate within 25 miles of the actual user. Our IP lookup details also provide a Fraud Score and overall risk analysis which determines how likely an active user on this IP address is to engage in abusive behavior. Unfortunately, it is not possible to extract a person's name, physical address, email address or phone number from an IP address. This is 4 bytes for IPv4 and 16 bytes for IPv6. This is the name that could be used for performing a PTR lookup, not the resolved hostname itself.
True if the address is reserved for multicast use. True if the address is allocated for private networks. See iana-ipv4-special-registry for IPv4 or iana-ipv6-special-registry for IPv6.
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True if the address is allocated for public networks. True if the address is unspecified. True if the address is otherwise IETF reserved. True if this is a loopback address. True if the address is reserved for link-local usage.
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See RFC Construct an IPv6 address. A string consisting of eight groups of four hexadecimal digits, each group representing 16 bits. The groups are separated by colons. This describes an exploded longhand notation. The string can also be compressed shorthand notation by various means. See RFC for details. For example, "abcdef" can be compressed to "::abcdef".
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An integer packed into a bytes object of length 16, big-endian. The short form of the address representation, with leading zeroes in groups omitted and the longest sequence of groups consisting entirely of zeroes collapsed to a single empty group. This is also the value returned by str addr for IPv6 addresses. The long form of the address representation, with all leading zeroes and groups consisting entirely of zeroes included.
For the following attributes, see the corresponding documentation of the IPv4Address class:. True if the address is reserved for site-local usage. Note that the site-local address space has been deprecated by RFC For any other address, this property will be None.
To interoperate with networking interfaces such as the socket module, addresses must be converted to strings or integers. This is handled using the str and int builtin functions:. Address objects support some operators. Unless stated otherwise, operators can only be applied between compatible objects i.
A network definition consists of a mask and a network address , and as such defines a range of IP addresses that equal the network address when masked binary AND with the mask. For example, a network definition with the mask There are several equivalent ways to specify IP network masks. A net mask is an IP address with some number of high-order bits set.see url
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In addition, a host mask is the logical inverse of a net mask , and is sometimes used for example in Cisco access control lists to denote a network mask. All attributes implemented by address objects are implemented by network objects as well. In addition, network objects implement additional attributes. Network objects are hashable , so they can be used as keys in dictionaries. For example, the following address specifications are equivalent: An integer that fits into 32 bits.
An integer packed into a bytes object of length 4, big-endian. The interpretation is similar to an integer address. A two-tuple of an address description and a netmask, where the address description is either a string, a bits integer, a 4-bytes packed integer, or an existing IPv4Address object; and the netmask is either an integer representing the prefix length e. If strict is True and host bits are set in the supplied address, then ValueError is raised. Otherwise, the host bits are masked out to determine the appropriate network address.
Changed in version 3. Refer to the corresponding attribute documentation in IPv4Address. These attributes are true for the network as a whole if they are true for both the network address and the broadcast address. The network address for the network. The network address and the prefix length together uniquely define a network. The broadcast address for the network.
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Packets sent to the broadcast address should be received by every host on the network. The host mask, as an IPv4Address object. The net mask, as an IPv4Address object. Returns an iterator over the usable hosts in the network.
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The usable hosts are all the IP addresses that belong to the network, except the network address itself and the network broadcast address. For networks with a mask length of 31, the network address and network broadcast address are also included in the result. True if this network is partly or wholly contained in other or other is wholly contained in this network. Computes the network definitions resulting from removing the given network from this one. Returns an iterator of network objects.
Raises ValueError if network is not completely contained in this network. The subnets that join to make the current network definition, depending on the argument values. The supernet containing this network definition, depending on the argument values. Returns a single network object. Compare this network to other.
Returns either -1 , 0 or 1. Deprecated since version 3.