1461148983-ec65835d-8abc-4f98-8b84-4e00f8693051

1. A method of calculating a value of a given function by using an apparatus including a plurality of computers, comprising:
an input process;
an ElGamal cipher text preparation process;
a sequential substitution reencryption process; and
a result output process,
characterized in that the input process comprises an information input step of inputting to the plurality of computers information on a circuit including a plurality of gates and the information, and a dispersion input step of inputting to each of the computers each one of plural pieces of partial data which are obtained by dispersing input data of the given function into plural pieces by the number of the computers,
the ElGamal cipher text preparation process comprises an ElGamal cipher text preparation step in which at least one of the computers generates a set of ElGamal cipher texts corresponding to inputs of the gates of the circuit that realizes the given function,
the sequential substitution reencryption process comprises a step of allowing each of the computers to perform a substitution reencryption process one after another, and the substitution reencryption process comprises a cipher text obtaining step of allowing the computer in turn to receive the set of ElGamal cipher texts from the computer in the previous turn, a cipher text substitution and reencryption step of changing an order of the set of ElGamal cipher texts received in the cipher text obtaining step for substitution and subjecting those cipher texts to reencryption, a step of disclosing the data generated in the cipher text substitution and reencryption step to at least the computer in next order, and a step of stopping the sequential substitution reencryption process when all of the computers have performed the sequential substitution reencryption process, and
the result output process comprises a partial decryption step of deciphering or partially deciphering a part of the cipher texts generated in the cipher text substitution and reencryption step, a decryption step of deciphering a cipher text that enciphers data corresponding to the input to the circuit in the cipher texts generated in the cipher text substitution and reencryption step, and an evaluation step of evaluating an output of the circuit by using the data deciphered in the decryption step and the data partially deciphered in the partial decryption step.
2. The calculation method according to claim 1,
characterized in that the set of ElGamal cipher texts corresponding to the inputs of the gates is a set of ElGamal cipher texts of a secret key, corresponding to each of the inputs of the gates, generated by each of the computers, and
a public key used for generating the ElGamal cipher texts is a sum of public keys corresponding to gates for generating two signal inputs to the gate.
3. The calculation method according to claim 1,
characterized in that the input process further comprises a step of inputting an area variable of an ElGamal encryption method to each of the computers,
the ElGamal cipher text preparation process further comprises a gate secret key generating step of generating a secret key of the ElGamal cipher texts corresponding to the inputs of the gates of the circuit by each of the computers,
each of the computers performs:
a gate public key generating step of generating a gate public key corresponding to the secret key generated in the gate secret key generating step;
a gate public key validity proof generating step of generating a gate public key validity proof for the public key generated in the gate public key generating step;
a gate public key validity proof disclosing step of disclosing the gate public key validity proof generated in the gate public key validity proof generating step;
an input gate secret key generating step of generating a secret key of the ElGamal cipher texts corresponding to the inputs of the gates where an input is directly made to the circuit of the gates of the circuit;
an input gate public key generating step of generating an input gate public key corresponding to the secret key generated in the input gate secret key generating step;
an input gate public key validity proof generating step of generating a validity proof for the input gate public key generated in the input gate public key generating step;
an input gate public key validity proof disclosing step of disclosing the input public key validity proof generated in the input gate public key validity proof generating step;
a gate public key obtaining step of obtaining gate public keys generated by other respective computers;
a gate public key integration step of integrating the gate public keys obtained in the gate public key obtaining step;
a gate public key encryption step of enciphering the gate secret key cipher text with the gate public key integrated in the gate public key integration step;
a gate secret key cipher text disclosing step of disclosing a gate secret key cipher text generated in the gate public key encryption step;
a gate secret key cipher text validity proof generating step of generating a validity proof for the gate secret key cipher text;
a gate secret key cipher text validity proof disclosing step of disclosing the gate secret key cipher text validity proof generated in the gate secret key cipher text validity proof generating step;
an input cipher text generating step of generating a cipher text corresponding to a part of the input to the circuit that is input to each of the computers;
an input cipher text validity proof generating step of generating a validity proof for the cipher text corresponding to the part of the input of the circuit generated in the input cipher text generating step;
an input cipher text validity proof disclosing step of disclosing the proof generated in the input cipher text validity proof generating step; and
an output cipher text generating step of generating and disclosing a cipher text corresponding to an output of the gate,
the sequential substitution reencryption process comprises:
a gate secret key cipher text substitution and reencryption step of changing an order of a set of the gate secret key cipher texts with one substitution randomly selected on the basis of a predetermined permitted substitution method for reencryption;
an input cipher text substitution and reencryption step of changing an order of a set of the input cipher texts with one substitution randomly selected on the basis of a predetermined permitted substitution method for reencryption;
an output cipher text substitution and reencryption step of changing an order of a set of the output cipher texts with one substitution randomly selected on the basis of a predetermined permitted substitution method for reencryption; and
a gate secret key cipher text, input cipher text, and output cipher text substitution and reencryption validity proof generating and disclosing step of generating and disclosing validity proofs for the substitution and reencryption performed in the gate secret key cipher text substitution and reencryption step, the input cipher text substitution and reencryption step, and the output cipher text substitution and reencryption step,
the partial decryption step of the result output process comprises:
a gate secret key partial decryption step of partially deciphering the gate secret key cipher texts by mutually performing communication and calculation by the computers;
an input cipher text partial decryption step of partially deciphering the input cipher texts by mutually performing communication and calculation by the computers;
an output cipher text partial decryption step of partially deciphering the output cipher texts by mutually performing communication and calculation by the computers; and
a gate secret key, input cipher text, and output cipher text partial decryption step validity proof generating and disclosing step of generating and disclosing the validity proofs for the partial decryption performed in the gate secret key partial decryption step, the input cipher text partial decryption step, and the output cipher text partial decryption step, and
the calculation method further comprises a step of verifying various validity proofs disclosed by other computers.
4. A calculation system for evaluating a function, comprising:
a plurality of computers;
communication means for performing communication with the plurality of computers;
input process means;
ElGamal cipher text preparation means;
sequential substitution reencryption means; and
result output means,
characterized in that the input means inputs information on a circuit whose output is desired to be obtained, information on the plurality of computers, and information on which part of an input to the circuit each of the computers has,
the ElGamal cipher text preparation means prepares ElGamal cipher texts for generating a set of ElGamal cipher texts corresponding to inputs of gates of the circuit that realizes the function,
the sequential substitution reencryption means comprises cipher text obtaining means for allowing the computer in turn to receive the set of ElGamal cipher texts from the computer in the previous turn, cipher text substitution and reencryption means for changing an order of the set of ElGamal cipher texts received by the cipher text obtaining means for substitution and subjecting those cipher texts to reencryption, means for disclosing the data generated by the cipher text substitution and reencryption means to at least the computer in next order, and means for stopping operation of the sequential substitution reencryption means when the sequential substitution reencryption means has been performed with all of the computers, and
the result output means comprises partial decryption means for deciphering or partially deciphering a part of the cipher texts generated by the cipher text substitution and reencryption means, decryption means for deciphering encryption related to itself of a cipher text that enciphers data corresponding to the input to the circuit in the cipher texts generated by the cipher text substitution and reencryption means, and evaluation means for evaluating an output of the circuit while using the data deciphered by the decryption means by the plurality of computers and the data partially deciphered by the partial decryption means by the plurality of computers.

The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.

1. A portable plastic resin restroom, comprising:
a cabin defining an enclosed interior;
a tank disposed within the cabin interior for holding waste material; and
a base supporting the tank and the cabin, the base having a depth dimension corresponding to a standardized dimension and a width dimension corresponding to about 1.5 times the standardized dimension.
2. The portable restroom of claim 1, wherein the standardized dimension is equal to a depth of a standard utility sized portable restroom.
3. The portable restroom of claim 1, wherein the standardized dimension corresponds to a cabin footprint of about 41 inches deep by 41 inches wide.
4. The portable restroom of claim 3, wherein the depth dimension of the base is about 41 inches and the width dimension is about 61 inches.
5. The portable restroom of claim 1, wherein the base includes runners spaced apart in the width dimension.
6. The portable restroom of claim 5, wherein the runners are spaced apart a second standardized dimension.
7. The portable restroom of claim 6, wherein the second standardized dimension is about 40 inches.
8. The portable restroom of claim 6, wherein there are at least three runners, two of which are spaced at the second standardized dimension.
9. The portable restroom of claim 8, wherein a third runner is spaced from the next runner at about \u2153 of the width dimension.
10. The portable restroom of claim 8, wherein there are four runners, first and second pairs of which are each spaced at the second standardized dimension.
11. The portable restroom of claim 8, wherein the first pair of runners has one runner disposed between the second pair of runners.
12. The portable restroom of claim 8, wherein the other of the first pair of runners is spaced from the second pair of runners at about \u2153 of the width dimension.
13. The portable restroom of claim 5, wherein the base further includes a frame to which the runners are mounted supporting a floor panel.
14. The portable restroom of claim 13, wherein the frame includes one or more structural channel members.
15. The portable restroom of claim 13, wherein the runners define an integral mounting section fitting within the one or more channel members.
16. The portable restroom of claim 15, wherein the mounting section includes an elongated groove receiving a lip of the associated one or more channel members.
17. The portable restroom of claim 5, wherein the cabin has an access opening and a runner located proximate to the access opening extends a lesser distance than at least one other of the runners.
18. The portable restroom of claim 17, wherein the runner proximate the access opening does not extend beyond a wall of the cabin defining the access opening.
19. A portable plastic resin restroom, comprising:
a cabin defining an enclosed interior;
a tank disposed within the cabin for holding waste material; and
a base having a frame supporting the tank and the cabin and at least two runners supporting the frame, wherein the base has a depth dimension corresponding to a standardized dimension corresponding to a depth of a conventional utility sized portable restroom and a width dimension corresponding to about 1.5 times the standardized dimension, and wherein the runners are spaced in the width dimension at a second standardized dimension.
20. A portable plastic resin restroom, comprising:
a cabin defining an enclosed interior;
a tank disposed within the cabin for holding waste material; and
a base having a frame supporting the tank and the cabin and at least three runners supporting the frame, wherein the base has a depth dimension corresponding to a standardized dimension corresponding to a depth of a conventional utility sized portable restroom and a width dimension corresponding to about 1.5 times the standardized dimension, and wherein two of the runners are spaced at a second standardized dimension and the third runner is spaced from the next runner by about \u2153 of the width dimension of the base.

1461148972-a0c75d19-1d31-4eb3-a73b-ef2ecdc954a8

1. A method for filling a foam mixture in a cavity of a horizontally-split metal mold by pressurizing the mixture comprised of granular aggregate, water-soluble binders, and water, and injecting the mixture into the cavity of the metal mold, the method comprising:
a step for preparing the horizontally-split metal mold having a filling port communicating with the cavity, which port is disposed at a side and near abutting surfaces of the horizontally-split metal mold,
a step for connecting a discharging port of a means for injecting the foam mixture to the filling port of the horizontally-split metal mold, wherein the means for injecting the mixture comprises a mixing bath to accommodate and mix the granular aggregate, the water-soluble binders, and the water, and a mechanism for pushing up the mixture in the mixing bath, wherein the mixing bath is cylindrical and has an opening at its upper end, a bottom plate at its lower end, and the discharging port at its side,
a step for pushing up the foam mixture in the mixing bath by driving the mechanism for pushing up the mixture,
a step for discharging the foam mixture from the discharging port, and for injecting the mixture into the filling port, and
a step for filling the cavity with the foam mixture while the mixture pushes out air in the cavity.
2. A method for filling a foam mixture in a cavity of a vertically or horizontally-split metal mold by pressurizing the mixture composed of granular aggregate, water-soluble binders, and water, and injecting the mixture into the cavity of the metal mold, the method comprising:
a step for preparing the vertically-split metal mold having a filling port communicating with the cavity, which port is disposed near the lower portion of its abutting surface, or the horizontally-split metal mold having a filling port communicating with the cavity, which port is disposed at its bottom surface,
a step for connecting an opening of a means for injecting the foam mixture to the filling port of the vertically or horizontally-split metal mold, wherein the means for injecting the mixture comprises a mixing bath to accommodate and mix the granular aggregate, the water-soluble binders, and the water, and a mechanism for pushing up the mixture in the mixing bath, wherein the mixing bath is cylindrical and has an opening at its upper end and a bottom plate at its lower end,
a step for pushing up the foam mixture in the mixing bath by driving the mechanism for pushing up the mixture,
a step for injecting the foam mixture into the filling port, and
a step for filling the cavity with the foam mixture while the mixture pushes out air in the cavity.
3. An apparatus for molding a mold by using the invention of claim 1, the apparatus comprising:
a horizontally-split metal mold having a filling port communicating with the cavity, which port is disposed at a side and near abutting surfaces of the horizontally-split metal mold, and having a mechanism for pushing the mold out, wherein the horizontally-split metal mold can be heated,
a mechanism for opening and closing the horizontally-split metal mold,
a means for injecting a foam mixture comprising a mixing bath to accommodate and mix granular aggregate, water-soluble binders, and water, and a mechanism for pushing up the mixture in the mixing bath, wherein the mixing bath is cylindrical and has an opening at its upper end, a bottom plate at its lower end, and a discharging port to discharge the mixture at its side, and wherein the discharging port can be connected to the filling port of the horizontally-split metal mold,
a means for mixing the granular aggregate, the water-soluble binders, and the water accommodated in the mixing bath of the means for injecting the mixture, wherein the means for mixing the mixture is disposed at a location that is apart from the mixing bath, and
a means for closing the opening disposed at the upper end of the mixing bath of the means for injecting the mixture, wherein the means for closing the opening is disposed at a location that is apart from the mixing bath.
4. An apparatus for molding a mold by using the invention of claim 2, the apparatus comprising:
a vertically-split metal mold having a filling port communicating with the cavity, which port is disposed at a lower side of an abutting surface of the vertically-split metal mold, and having a mechanism for pushing the mold out, wherein the vertically-split metal mold can be heated,
a mechanism for opening and closing the vertically-split metal mold,
a means for injecting a foam mixture comprising a mixing bath to accommodate and mix granular aggregate, water-soluble binders, and water, and a mechanism for pushing up the mixture in the mixing bath, wherein the mixing bath is cylindrical and has an opening at its upper end, a bottom plate at its lower end, and wherein the opening of the mixing bath can be connected to the filling ports of the vertically-split metal mold,
a means for mixing the granular aggregate, the water-soluble binders, and the water accommodated in the mixing bath of the means for injecting the mixture, wherein the means for mixing the mixture is disposed at a location that is apart from the mixing bath, and
a means for connecting the opening of the mixing bath of the means for injecting the mixture to the filling ports of the vertically-split metal mold, wherein the means is disposed at a location that is apart from the mixing bath.
5. An apparatus for molding a mold by using the invention of claim 2, the apparatus comprising:
a horizontally-split metal mold having a filling port communicating with the cavity, which port is disposed at a lower surface of a lower mold, and having a mechanism for pushing the mold out, wherein the horizontally-split metal mold can be heated,
a mechanism for opening and closing the horizontally-split metal mold,
a means for injecting a foam mixture comprising a mixing bath to accommodate and mix granular aggregate, water-soluble binders, and water, and a mechanism for pushing up the mixture in the mixing bath, wherein the mixing bath is cylindrical and has an opening at its upper end, a bottom plate at its lower end, and wherein the opening of the mixing bath can be connected to the filling ports of the horizontally-split metal mold,
a means for mixing the granular aggregate, the water-soluble binders, and the water accommodated in the mixing bath of the means for injecting the mixture, wherein the means for mixing the mixture is disposed at a location that is apart from the mixing bath, and
a means for connecting the opening of the mixing bath of the means for injecting the mixture to the filling ports of the horizontally-split metal mold, wherein the means is disposed at a location that is apart from the mixing bath.
6. The apparatus for molding a mold of claim 3, wherein the discharging port of the means for injecting the foam mixture can be connected to the filling port of the horizontally-split metal mold by horizontally moving the means for injecting the foam mixture.
7. The apparatus for molding a mold of claim 4, wherein the opening of the means for injecting the foam mixture can be connected to the filling port of the horizontally or the vertically-split metal mold by horizontally and vertically moving the means for injecting the foam mixture.
8. The apparatus for molding a mold of claim 5, wherein the opening of the means for injecting the foam mixture can be connected to the filling port of the horizontally, or the vertically-split metal mold by horizontally and vertically moving the means for injecting the foam mixture.
9. The apparatus for molding a mold of any of claims 3-8, wherein the horizontally or the vertically-split metal mold can be heated by an electrical heater.

The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.

1. A composition comprising crystal of flumioxazin which shows a powder X-Ray diffraction pattern having diffraction peaks with 2\u03b8 values (\xb0) shown in Table 1, said pattern being obtained by CuK\u03b1 rays diffraction analysis,
TABLE 1
2\u03b8 value (\xb0)
\u20029.8 \xb1 0.1
11.4 \xb1 0.1
12.7 \xb1 0.1
13.8 \xb1 0.1
16.0 \xb1 0.1
16.4 \xb1 0.1
16.7 \xb1 0.1
and one or more herbicidal compounds selected from the group B:
Group B:
B-1, Acetolactic acid synthase inhibitors;
B-2, Acetyl CoA carboxylase inhibitors;
B-3, Protoporphyrinogen IX oxidase inhibitors;
B-4, 4-Hydroxyphenylpyrubic acid dioxygenase inhibitors;
B-5, Phytoene desaturase inhibitors;
B-6, Photosystem II inhibitors;
B-7, Very-long-chain fatty acid synthesis inhibitors;
B-8, Tubulin synthesis inhibitors;
B-9, Auxin type herbicides;
B-10, Enolpyruvylshikimate phosphate synthase inhibitors;
B-11, Glutamine synthetase inhibitors; and
B-12, Other herbicides.
2. The weed control composition according to claim 1, wherein the compound of the group B is the following compound:
B-1, Acetolactic acid synthase inhibitors:
Pyrithiobac, pyrithiobac-sodium salt, pyriminobac, pyriminobac-methyl, bispyribac, bispyribac sodium salt, pyribenzoxim, pyrimisulfan, pyriftalid, triafamone, amidosulfuron, azimsulfuron, bensulfuron, bensulfuron-methyl, chlorimuron, chlorimuron-ethyl, cyclosulfamuron, ethoxysulfuron, flazasulfuron, flucetosulfuron, flupyrsulfuron, flupyrsulfuron methyl-sodium, foramsulfuron, halosulfuron, halosulfuron-methyl, imazosulfuron, mesosulfuron, mesosulfuron-methyl, metazosulfuron, nicosulfuron, orthosulfamuron, oxasulfuron, primisulfuron, primisulfuron-methyl, propyrisulfuron, pyrazosulfuron, pyrazosulfuron-ethyl, rimsulfuron, sulfometuron, sulfometuron-methyl, sulfosulfuron, trifloxysulfuron-sodium salt, trifloxysulfuron, chlorsulfuron, cinosulfuron, ethametsulfuron, ethametsulfuron-methyl, iodosulfuron, iodosulfuron-methyl-sodium, iofensulfuron, iofensulfuron-sodium, metsulfuron, metsulfuron-methyl, prosulfuron, thifensulfuron, thifensulfuron-methyl, triasulfuron, tribenuron, tribenuron-methyl, triflusulfuron, triflusulfuron-methyl, tritosulfuron, bencarbazone, flucarbazone, flucarbazone-sodium salt, ipfencarbazone, propoxycarbazone, propoxycarbazone-sodium salt, thiencarbazone, thiencarbazone-methyl, cloransulam, cloransulam-methyl, diclosulam, florasulam, flumetsulam, metosulam, penoxsulam, pyroxsulam, imazamethabenz, imazamethabenz-methyl, imazamox, imazamox-ammonium salt, imazapic, imazapic-ammonium salt, imazapyr, imazapyr-isopropylammonium salt, imazaquin, imazaquin-ammonium salt, imazethapyr, and imazethapyr-ammonium salt;
B-2, Acetyl CoA carboxylase inhibitors:
Clodinafop, clodinafop-propargyl, cyhalofop, cyhalofop-butyl, diclofop, diclofop-methyl, fenoxaprop, fenoxaprop-ethyl, fenoxaprop-P, fenoxaprop-P-ethyl, fluazifop, fluazifop-butyl, fluazifop-P, fluazifop-P-butyl, haloxyfop, haloxyfop-methyl, haloxyfop-P, haloxyfop-P-methyl, metamifop, propaquizafop, quizalofop, quizalofop-ethyl, quizalofop-P, quizalofop-P-ethyl, alloxydim, clethodim, sethoxydim, tepraloxydim, tralkoxydim, and pinoxaden;
B-3, Protoporphyrinogen IX oxidase inhibitors:
Azafenidin, oxadiazone, oxadiargyl, carfentrazone, carfentrazone-ethyl, saflufenacil, cinidon, cinidon-ethyl, sulfentrazone, pyraclonil, pyraflufen, pyraflufen-ethyl, butafenacil, fluazolate, fluthiacet, fluthiacet-methyl, flufenpyr, flufenpyr-ethyl, flumiclorac, flumiclorac-pentyl, pentoxazone, oxyfluorfen, acifluorfen, aclonifen, chlomethoxynil, chloronitrofen, nitrofen, bifenox, fluoroglycofene, fluoroglycofene-ethyl, fomesafen, fomesafen-sodium salt, lactofen, and compounds represented by the formula (I):
B-4, 4-Hydroxyphenylpyrubic acid dioxygenase inhibitors:
Benzobicyclon, bicyclopyrone, mesotrione, sulcotrione, tefuryltrione, tembotrione, isoxachlorotole, isoxaflutole, benzofenap, pyrasulfotole, pyrazolynate, pyrazoxyfen, and topramezone;
B-5, Phytoene desaturase inhibitors:
Diflufenican, picolinafen, beflubutamid, norflurazon, fluridone, flurochloridone, and flurtamone;
B-6, Photosystem II inhibitors:
Ioxynil, ioxynil octanoate, bentazone, pyridate, bromoxynil, bromoxynil octanoate, chlorotoluron, dimefuron, diuron, linuron, fluometuron, isoproturon, isouron, tebuthiuron, benzthiazuron, methabenzthiazuron, propanil, metobromuron, metoxuron, monolinuron, siduron, simazine, atrazine, propazine, cyanazine, ametryne, simetryn, dimethametryn, prometryn, terbumeton, terbuthylazine, terbutryn, trietazine, hexazinone, metamitron, metribuzin, amicarbazone, bromacil, lenacil, terbacil, chloridazon, desmedipham, and phenmedipham;
B-7, Very-long-chain fatty acid synthase inhibitors:
Propachlor, metazachlor, alachlor, acetochlor, metolachlor, S-metolachlor, butachlor, pretilachlor, thenylchlor, indanofan, cafenstrole, fentrazamide, dimethenamid, dimethenamid-P, mefenacet, pyroxasulfone, fenoxasulfone, naproanilide, anilofos, and flufenacet;
B-8, Tubulin synthesis inhibitors:
Trifluralin, pendimethalin, ethafluralin, benfluralin, prodiamine, indaziflam, triaziflam, butamifos, dithiopyr, and thiazopyr;
B-9, Auxin type herbicides:
Dicamba and a salt thereof (diglycolamine salt, dimethylammonium salt, isopropylammonium salt, potassium salt, sodium salt, and choline salt), 2,4-D and a salt or ester thereof (butotyl ester, dimethylammonium salt, diolamine salt, ethylhexyl ester, isooctyl ester, isopropylammonium salt, sodium salt, and triisopropanolamine salt), 2,4-DB and a salt or ester thereof (dimethylammonium salt, isooctyl ester, and choline salt), MCPA and a salt or ester thereof (dimethylammonium salt, 2-ethylhexylester, isooctyl ester, sodium salt, and choline salt), MCPB, mecoprop and a salt or ester thereof (dimethylammonium salt, diolamine salt, ethadyl ester, 2-ethylhexyl ester, isooctyl ester, methyl ester, potassium salt, sodium salt, tololamine salt, and choline salt), mecoprop-P and a salt or ester thereof (dimethylammonium salt, 2-ethylhexyl ester, isobutyl salt, potassium salt, and choline salt), dichlorprop and a salt or ester thereof (butotyl ester, dimethylammonium salt, 2-ethylhexyl ester, isooctyl ester, methyl ester, potassium salt, sodium salt, and choline salt), dichlorprop-P, dichlorprop-P dimethylammonium, triclopyr and a salt or ester thereof (butotyl ester and triethylammonium salt), fluroxypyr, fluroxypyr-meptyl, picloram and a salt thereof (potassium salt, triisopanolammonium salt, and choline salt), quinclorac, quinmerac, aminopyralid and a salt thereof (potassium salt, triisopanolammonium salt, and choline salt), clopyralid and a salt thereof (olamine salt, potassium salt, triethylammonium salt, and choline salt), and clomeprop;
B-10, Enolpyruvylshikimate phosphate synthase inhibitors:
Glyphosate, glyphosate-isopropylamine salt, glyphosate-trimesium salt, glyphosate-ammonium salt, glyphosate-diammonium salt, glyphosate-sodium salt, glyphosate-potassium salt, and glyphosate-guanidine salt;
B-11, Glutamine synthetase inhibitors:
Glufosinate, glufosinate-ammonium salt, glufosinate-P, glufosinate-P-sodium salt, and bialaphos;
B-12, Other herbicides:
Isoxaben, dichlobenil, methiozolin, diallate, butyrate, triallate, chlorpropham, asulam, phenisopham, benthiocarb, molinate, esprocarb, pyributicarb, prosulfocarb, orbencarb, EPTC, dimepiperate, Swep, aminocyclopyrachlor, aminocyclopyrachlor-methyl, aminocyclopyrachlor-potassium, difenoxuron, methyl dymron, bromobutide, dymron, cumyluron, diflufenzopyr, etobenzanid, tridiphane, amitrole, fenchlorazole, clomazone, maleic hydrazide, oxaziclomefone, cinmethylin, benfuresate, ACN, dalapon, chlorthiamid, flupoxam, bensulide, paraquat, paraquat-dichloride, diquat, and diquat-dibromide.
3. The weed control composition according to claim 1, wherein the compound of the group B is a compound selected from a glyphosate isopropylamine salt, a glyphosate-trimesium salt, a glyphosate-ammonium salt, a glyphosate-diammonium salt, a glyphosate-sodium salt, a glyphosate-potassium salt, and a glyphosate-guanidine salt.
4. The weed control composition according to claim 1, wherein the compound of the group B is a glufosinate-ammonium salt.
5. The weed control composition according to claim 1, wherein the compound of the group B is chlorimuron-ethyl.
6. The weed control composition according to claim 1, wherein the compound of the group B is cloransulam-methyl.
7. The weed control composition according to claim 1, wherein the compound of the group B is pyroxasulfone.
8. The weed control composition according to claim 1, wherein the compound of the group B is a compound selected from dicamba, a dicamba-diglycolamine salt, a dicamba-dimethylammonium salt, a dicamba-isopropylammonium salt, a dicamba-potassium salt, a dicamba-sodium salt, and a dicamba-choline salt.
9. The weed control composition according to claim 1, wherein the compound of the group B is a compound selected from a 2,4-D, 2,4-D butotyl ester, a 2,4-D dimethylammonium salt, a 2,4-D diolamine salt, a 2,4-D ethylhexyl ester, a 2,4-D isooctyl ester, a 2,4-D isopropylammonium salt, a 2,4-D sodium salt, and a 2,4-D triisopropanolammonium salt.
10. The weed control composition according to claim 1, wherein the compound of the group B is an imazethapyr-ammonium salt.
11. The weed control composition according to claim 1, wherein the compound of the group B is metribuzin.
12. The weed control composition according to claim 1, wherein the compound of the group B is isoxaflutole.
13. The weed control composition according to claim 1, wherein the compound of the group B is mesotrione.
14. The weed control composition according to claim 1, wherein the compound of the group B is tembotrione.
15. The weed control composition according to claim 1, wherein the compound of the group B is ametryne.
16. A method of controlling weeds, the method comprising applying an effective amount of crystal of flumioxazin defined in claim 1 and one or more herbicidal compounds selected from the above group B defined in claim 1 to soil where the weeds are grown or to be grown, or weeds.
17. The method according to claim 16, which is a method of controlling weeds in a crop field, land under perennial crops, or non-crop land.
18. The method according to claim 17, wherein the crop field is a field for soybean, peanut, corn, cotton, wheat, or sugarcane.
19. The method according to claim 17, wherein the land under perennial crops is an orchard.