+--- Day 16: Packet Decoder ---
+
+As you leave the cave and reach open waters, you receive a transmission from
+the Elves back on the ship.
+
+The transmission was sent using the Buoyancy Interchange Transmission System (
+BITS), a method of packing numeric expressions into a binary sequence. Your
+submarine's computer has saved the transmission in hexadecimal (your puzzle
+input).
+
+The first step of decoding the message is to convert the hexadecimal
+representation into binary. Each character of hexadecimal corresponds to four
+bits of binary data:
+
+0 = 0000
+1 = 0001
+2 = 0010
+3 = 0011
+4 = 0100
+5 = 0101
+6 = 0110
+7 = 0111
+8 = 1000
+9 = 1001
+A = 1010
+B = 1011
+C = 1100
+D = 1101
+E = 1110
+F = 1111
+
+The BITS transmission contains a single packet at its outermost layer which
+itself contains many other packets. The hexadecimal representation of this
+packet might encode a few extra 0 bits at the end; these are not part of the
+transmission and should be ignored.
+
+Every packet begins with a standard header: the first three bits encode the
+packet version, and the next three bits encode the packet type ID. These two
+values are numbers; all numbers encoded in any packet are represented as binary
+with the most significant bit first. For example, a version encoded as the
+binary sequence 100 represents the number 4.
+
+Packets with type ID 4 represent a literal value. Literal value packets encode
+a single binary number. To do this, the binary number is padded with leading
+zeroes until its length is a multiple of four bits, and then it is broken into
+groups of four bits. Each group is prefixed by a 1 bit except the last group,
+which is prefixed by a 0 bit. These groups of five bits immediately follow the
+packet header. For example, the hexadecimal string D2FE28 becomes:
+
+110100101111111000101000
+VVVTTTAAAAABBBBBCCCCC
+
+Below each bit is a label indicating its purpose:
+
+ • The three bits labeled V (110) are the packet version, 6.
+ • The three bits labeled T (100) are the packet type ID, 4, which means the
+ packet is a literal value.
+ • The five bits labeled A (10111) start with a 1 (not the last group, keep
+ reading) and contain the first four bits of the number, 0111.
+ • The five bits labeled B (11110) start with a 1 (not the last group, keep
+ reading) and contain four more bits of the number, 1110.
+ • The five bits labeled C (00101) start with a 0 (last group, end of packet)
+ and contain the last four bits of the number, 0101.
+ • The three unlabeled 0 bits at the end are extra due to the hexadecimal
+ representation and should be ignored.
+
+So, this packet represents a literal value with binary representation
+011111100101, which is 2021 in decimal.
+
+Every other type of packet (any packet with a type ID other than 4) represent
+an operator that performs some calculation on one or more sub-packets contained
+within. Right now, the specific operations aren't important; focus on parsing
+the hierarchy of sub-packets.
+
+An operator packet contains one or more packets. To indicate which subsequent
+binary data represents its sub-packets, an operator packet can use one of two
+modes indicated by the bit immediately after the packet header; this is called
+the length type ID:
+
+ • If the length type ID is 0, then the next 15 bits are a number that
+ represents the total length in bits of the sub-packets contained by this
+ packet.
+ • If the length type ID is 1, then the next 11 bits are a number that
+ represents the number of sub-packets immediately contained by this packet.
+
+Finally, after the length type ID bit and the 15-bit or 11-bit field, the
+sub-packets appear.
+
+For example, here is an operator packet (hexadecimal string 38006F45291200)
+with length type ID 0 that contains two sub-packets:
+
+00111000000000000110111101000101001010010001001000000000
+VVVTTTILLLLLLLLLLLLLLLAAAAAAAAAAABBBBBBBBBBBBBBBB
+
+ • The three bits labeled V (001) are the packet version, 1.
+ • The three bits labeled T (110) are the packet type ID, 6, which means the
+ packet is an operator.
+ • The bit labeled I (0) is the length type ID, which indicates that the
+ length is a 15-bit number representing the number of bits in the
+ sub-packets.
+ • The 15 bits labeled L (000000000011011) contain the length of the
+ sub-packets in bits, 27.
+ • The 11 bits labeled A contain the first sub-packet, a literal value
+ representing the number 10.
+ • The 16 bits labeled B contain the second sub-packet, a literal value
+ representing the number 20.
+
+After reading 11 and 16 bits of sub-packet data, the total length indicated in
+L (27) is reached, and so parsing of this packet stops.
+
+As another example, here is an operator packet (hexadecimal string
+EE00D40C823060) with length type ID 1 that contains three sub-packets:
+
+11101110000000001101010000001100100000100011000001100000
+VVVTTTILLLLLLLLLLLAAAAAAAAAAABBBBBBBBBBBCCCCCCCCCCC
+
+ • The three bits labeled V (111) are the packet version, 7.
+ • The three bits labeled T (011) are the packet type ID, 3, which means the
+ packet is an operator.
+ • The bit labeled I (1) is the length type ID, which indicates that the
+ length is a 11-bit number representing the number of sub-packets.
+ • The 11 bits labeled L (00000000011) contain the number of sub-packets, 3.
+ • The 11 bits labeled A contain the first sub-packet, a literal value
+ representing the number 1.
+ • The 11 bits labeled B contain the second sub-packet, a literal value
+ representing the number 2.
+ • The 11 bits labeled C contain the third sub-packet, a literal value
+ representing the number 3.
+
+After reading 3 complete sub-packets, the number of sub-packets indicated in L
+(3) is reached, and so parsing of this packet stops.
+
+For now, parse the hierarchy of the packets throughout the transmission and add
+up all of the version numbers.
+
+Here are a few more examples of hexadecimal-encoded transmissions:
+
+ • 8A004A801A8002F478 represents an operator packet (version 4) which contains
+ an operator packet (version 1) which contains an operator packet (version
+ 5) which contains a literal value (version 6); this packet has a version
+ sum of 16.
+ • 620080001611562C8802118E34 represents an operator packet (version 3) which
+ contains two sub-packets; each sub-packet is an operator packet that
+ contains two literal values. This packet has a version sum of 12.
+ • C0015000016115A2E0802F182340 has the same structure as the previous
+ example, but the outermost packet uses a different length type ID. This
+ packet has a version sum of 23.
+ • A0016C880162017C3686B18A3D4780 is an operator packet that contains an
+ operator packet that contains an operator packet that contains five literal
+ values; it has a version sum of 31.
+
+Decode the structure of your hexadecimal-encoded BITS transmission; what do you
+get if you add up the version numbers in all packets?
+
+Your puzzle answer was 945.
+
+--- Part Two ---
+
+Now that you have the structure of your transmission decoded, you can calculate
+the value of the expression it represents.
+
+Literal values (type ID 4) represent a single number as described above. The
+remaining type IDs are more interesting:
+
+ • Packets with type ID 0 are sum packets - their value is the sum of the
+ values of their sub-packets. If they only have a single sub-packet, their
+ value is the value of the sub-packet.
+ • Packets with type ID 1 are product packets - their value is the result of
+ multiplying together the values of their sub-packets. If they only have a
+ single sub-packet, their value is the value of the sub-packet.
+ • Packets with type ID 2 are minimum packets - their value is the minimum of
+ the values of their sub-packets.
+ • Packets with type ID 3 are maximum packets - their value is the maximum of
+ the values of their sub-packets.
+ • Packets with type ID 5 are greater than packets - their value is 1 if the
+ value of the first sub-packet is greater than the value of the second
+ sub-packet; otherwise, their value is 0. These packets always have exactly
+ two sub-packets.
+ • Packets with type ID 6 are less than packets - their value is 1 if the
+ value of the first sub-packet is less than the value of the second
+ sub-packet; otherwise, their value is 0. These packets always have exactly
+ two sub-packets.
+ • Packets with type ID 7 are equal to packets - their value is 1 if the value
+ of the first sub-packet is equal to the value of the second sub-packet;
+ otherwise, their value is 0. These packets always have exactly two
+ sub-packets.
+
+Using these rules, you can now work out the value of the outermost packet in
+your BITS transmission.
+
+For example:
+
+ • C200B40A82 finds the sum of 1 and 2, resulting in the value 3.
+ • 04005AC33890 finds the product of 6 and 9, resulting in the value 54.
+ • 880086C3E88112 finds the minimum of 7, 8, and 9, resulting in the value 7.
+ • CE00C43D881120 finds the maximum of 7, 8, and 9, resulting in the value 9.
+ • D8005AC2A8F0 produces 1, because 5 is less than 15.
+ • F600BC2D8F produces 0, because 5 is not greater than 15.
+ • 9C005AC2F8F0 produces 0, because 5 is not equal to 15.
+ • 9C0141080250320F1802104A08 produces 1, because 1 + 3 = 2 * 2.
+
+What do you get if you evaluate the expression represented by your
+hexadecimal-encoded BITS transmission?
+
+Your puzzle answer was 10637009915279.
+
+Both parts of this puzzle are complete! They provide two gold stars: **
+
+At this point, you should return to your Advent calendar and try another
+puzzle.
+
+If you still want to see it, you can get your puzzle input.
+